| Ref. PMID | Source | Type | Date | Title | #cit TOT | cit/ year | #cit INT | Tag | Sel. |
|---|
| Ref. PMID | Source | Type | Date | Title | #cit TOT | cit/ year | #cit INT | Tag | Sel. |
|---|---|---|---|---|---|---|---|---|---|
| Huang, Peng et al. Microbiome. (2018). 6(1):211 30482240 | PM | 2018.11 | The chicken gut metagenome and the modulatory effects of plant-derived benzylisoquinoline alkaloids. | 64 | 14.8 | 19 | --- | ||
| Akinyemi, Fisayo T et al. Poult Sci. (2020). 99(10):5079-5090 32988546 | PM | 2020.10 | Dynamic distribution of gut microbiota during embryonic development in chicken. | 2 | 0.8 | 0 | --- | ||
| Yang, Zengqiao et al. Front Vet Sci. (2020). 7:599337 33330722 | PM | 2020.00 | Characterization of the Intestinal Microbiota of Broiler Breeders With Different Egg Laying Rate. | 1 | 0.3 | 0 | --- | ||
| Mesa, Dany et al. mSystems. (2020). 5(4) 32817382 | PM | 2020.08 | Cyclophosphamide Increases Lactobacillus in the Intestinal Microbiota in Chickens. | 0 | 0.0 | 0 | --- | ||
| Haberecht, Sarah et al. AMB Express. (2020). 10(1):143 32803529 | PM | 2020.08 | Poultry feeds carry diverse microbial communities that influence chicken intestinal microbiota colonisation and maturation. | 2 | 0.8 | 0 | --- | ||
| Liu, Gang et al. Front Microbiol. (2020). 11:587873 33262746 | PM | 2020.00 | Effects of Sex and Diet on Gut Microbiota of Farmland-Dependent Wintering Birds. | 2 | 0.6 | 0 | --- | ||
| Robinson, Kelsy et al. Appl Environ Microbiol. (2020). 86(13) 32358003 | PM | 2020.06 | Chicken Intestinal Mycobiome: Initial Characterization and Its Response to Bacitracin Methylene Disalicylate. | 2 | 0.7 | 1 | --- | ||
| Maki, Joel J et al. J Anim Sci Biotechnol. (2020). 11:60 32537141 | PM | 2020.00 | Eggshell and environmental bacteria contribute to the intestinal microbiota of growing chickens. | 6 | 1.8 | 5 | --- | ||
| Chen, Xiuqin et al. Curr Microbiol. (2020). 77(5):769-778 31919671 | PM | 2020.05 | Muscovy Duck Reovirus Infection Disrupts the Composition of Intestinal Microbiota in Muscovy Ducklings. | 2 | 0.7 | 0 | --- | ||
| Ke, Famin et al. Environ Sci Pollut Res Int. (2020). 27(26):32888-32898 32524403 | PM | 2020.09 | Comparative analysis of the gut microbiota of grass carp fed with chicken faeces. | 1 | 0.4 | 0 | --- | ||
| Wan, Xianhua et al. BMC Vet Res. (2020). 16(1):218 32600312 | PM | 2020.06 | Gut microbiota profiles of commercial laying hens infected with tumorigenic viruses. | 0 | 0.0 | 0 | --- | ||
| Syed, Muhammad Ali et al. Poult Sci. (2020). 99(9):4549-4557 32867999 | PM | 2020.09 | Staphylococci in poultry intestines: a comparison between farmed and household chickens. | 1 | 0.4 | 0 | --- | ||
| Zhu, Chunhong et al. Front Microbiol. (2020). 11:565367 33133040 | PM | 2020.00 | Effects of Rearing Conditions and Sex on Cecal Microbiota in Ducks. | 2 | 0.6 | 0 | --- | ||
| Taylor, Kara J M et al. Appl Environ Microbiol. (2020). 86(12) 32276973 | PM | 2020.06 | Respiratory and Gut Microbiota in Commercial Turkey Flocks with Disparate Weight Gain Trajectories Display Differential Compositional Dynamics. | 7 | 2.5 | 3 | --- | ||
| Wang, Weiwei et al. Animals (Basel). (2020). 10(7) 32698425 | PM | 2020.07 | Enterococcus faecium Modulates the Gut Microbiota of Broilers and Enhances Phosphorus Absorption and Utilization. | 4 | 1.5 | 0 | --- | ||
| Andreani, Nadia A et al. Poult Sci. (2020). 99(11):6062-6070 33142525 | PM | 2020.11 | A reasonable correlation between cloacal and cecal microbiomes in broiler chickens. | 4 | 1.7 | 2 | --- | ||
| Tao, Zhiyun et al. Poult Sci. (2019). 98(5):1947-1959 30649519 | PM | 2019.05 | Effects of ammonia on intestinal microflora and productive performance of laying ducks. | 6 | 1.6 | 1 | --- | ||
| Díaz Carrasco, Juan María et al. Biomed Res Int. (2018). 2018:1879168 29682522 | PM | 2018.00 | Tannins and Bacitracin Differentially Modulate Gut Microbiota of Broiler Chickens. | 28 | 5.3 | 8 | --- | ||
| Li, X et al. Br Poult Sci. (2020). 61(2):217-224 31680550 | PM | 2020.04 | Influences of melatonin and endotoxin lipopolysaccharide on goose productive performance and gut microbiota. | 0 | 0.0 | 0 | --- | ||
| Ji, Feng et al. Sci Rep. (2020). 10(1):19978 33203893 | PM | 2020.11 | Changes in the diversity and composition of gut microbiota in pigeon squabs infected with Trichomonas gallinae. | 1 | 0.4 | 0 | --- | ||
| Ji, Jian et al. Poult Sci. (2020). 99(8):4044-4051 32731992 | PM | 2020.08 | Effects of the DMRT1 genotype on the body weight and gut microbiota in the broiler chicken. | 2 | 0.8 | 0 | --- | ||
| Feng, Xin et al. Poult Sci. (2020). 99(11):6022-6030 33142521 | PM | C | 2020.11 | Effects of phytosterols supplementation on growth performance and intestinal microflora of yellow-feather broilers. | 2 | 0.9 | 1 | --- | |
| Ma, Boheng et al. mSphere. (2020). 5(5) 32907952 | PM | 2020.09 | Enrofloxacin Shifts Intestinal Microbiota and Metabolic Profiling and Hinders Recovery from Salmonella enterica subsp. enterica Serovar Typhimurium Infection in Neonatal Chickens. | 4 | 1.6 | 2 | --- | ||
| Hamilton, Madison et al. Avian Dis. (2020). 64(2):123-129 32550611 | PM | 2020.06 | Influence of Eimeria spp. Infection on Chicken Jejunal Microbiota and the Efficacy of Two Alternative Products Against the Infection. | 1 | 0.4 | 0 | --- | ||
| Meng, Yaqi et al. J Biosci Bioeng. (2020). 130(1):54-62 32224011 | PM | 2020.07 | Modulation of gut microbiota in rats fed whole egg diets by processing duck egg to preserved egg. | 0 | 0.0 | 0 | --- | ||
| Śliżewska, Katarzyna et al. Sci Rep. (2020). 10(1):4281 32152423 | PM | 2020.03 | The effect of synbiotic preparations on the intestinal microbiota and her metabolism in broiler chickens. | 13 | 4.3 | 4 | --- | ||
| Bortoluzzi, C et al. Poult Sci. (2018). 97(3):937-945 29294123 | PM | R | 2018.03 | Threonine, arginine, and glutamine: Influences on intestinal physiology, immunology, and microbiology in broilers. | 13 | 2.6 | 1 | --- | |
| Ricaud, K et al. Poult Sci. (2019). 98(3):1390-1402 30285149 | PM | 2019.03 | Evolution of intestinal microbiota and body compartments during spontaneous hyperphagia in the Greylag goose. | 4 | 1.0 | 3 | --- | ||
| Brisbin, Jennifer T et al. Anim Health Res Rev. (2008). 9(1):101-10 18541076 | PM | R | 2008.06 | Interactions between commensal bacteria and the gut-associated immune system of the chicken. | 65 | 4.4 | 19 | --- | |
| Feng, Yan et al. Poult Sci. (2020). 99(1):263-271 32416810 | PM | 2020.01 | Fermented wheat bran by xylanase-producing Bacillus cereus boosts the intestinal microflora of broiler chickens. | 7 | 2.2 | 2 | --- | ||
| Ding, Jinmei et al. Front Microbiol. (2017). 8:1967 29067020 | PM | 2017.00 | Inheritance and Establishment of Gut Microbiota in Chickens. | 49 | 7.8 | 13 | --- | ||
| Williams, Travis; Athrey, Giridhar Microorganisms. (2020). 8(5) 32408567 | PM | 2020.05 | Cloacal Swabs Are Unreliable Sources for Estimating Lower Gastro-Intestinal Tract Microbiota Membership and Structure in Broiler Chickens. | 3 | 1.1 | 1 | --- | ||
| Vieira, Alexandre Maciel et al. PLoS One. (2020). 15(8):e0237118 32764795 | PM | 2020.00 | Modulation of the intestinal microbiota of broilers supplemented with monensin or functional oils in response to challenge by Eimeria spp. | 4 | 1.2 | 3 | --- | ||
| Hieke, Anne-Sophie Charlotte et al. PeerJ. (2019). 7:e6592 30886778 | PM | 2019.00 | Circadian disruption and divergent microbiota acquisition under extended photoperiod regimens in chicken. | 11 | 2.6 | 4 | --- | ||
| Cho, Hyunjun; Lee, Won Young Ecol Evol. (2020). 10(12):5582-5594 32607176 | PM | 2020.06 | Interspecific comparison of the fecal microbiota structure in three Arctic migratory bird species. | 2 | 0.7 | 0 | --- | ||
| Drovetski, Sergei V et al. Sci Rep. (2018). 8(1):3713 29487373 | PM | 2018.02 | Spatial Organization of the Gastrointestinal Microbiota in Urban Canada Geese. | 8 | 1.6 | 2 | --- | ||
| Kers, Jannigje G et al. Microbiologyopen. (2020). 9(11):e1114 33068065 | PM | 2020.11 | Associations between phenotypic characteristics and clinical parameters of broilers and intestinal microbial development throughout a production cycle: A field study. | 1 | 0.4 | 1 | --- | ||
| Robinson, Kelsy et al. Microorganisms. (2019). 7(9) 31443457 | PM | 2019.08 | Differential Impact of Subtherapeutic Antibiotics and Ionophores on Intestinal Microbiota of Broilers. | 7 | 2.0 | 4 | --- | ||
| Thomas, Milton et al. mSphere. (2019). 4(2) 30918057 | PM | 2019.03 | Gut Microbial Dynamics during Conventionalization of Germfree Chicken. | 11 | 2.8 | 4 | --- | ||
| Tsiouris, Vasileios et al. Foods. (2020). 9(5) 32380761 | PM | 2020.05 | The Effect of Whey on Performance, Gut Health and Bone Morphology Parameters in Broiler Chicks. | 2 | 0.7 | 1 | --- | ||
| Sreejith, S et al. Microb Pathog. (2020). 149:104562 33039593 | PM | 2020.12 | Healthy broilers disseminate antibiotic resistance in response to tetracycline input in feed concentrates. | 0 | 0.0 | 0 | --- | ||
| Yang, Xin et al. Poult Sci. (2020). 99(5):2395-2406 32359574 | PM | 2020.05 | Gut microbiota mediates the protective role of Lactobacillus plantarum in ameliorating deoxynivalenol-induced apoptosis and intestinal inflammation of broiler chickens. | 5 | 1.8 | 1 | --- | ||
| Zhao, Zi-Tong et al. Int J Biol Macromol. (2020). 155:61-70 32224178 | PM | 2020.07 | Effects of polysaccharides from Yingshan Yunwu tea on meat quality, immune status and intestinal microflora in chickens. | 1 | 0.4 | 0 | --- | ||
| Liu, Guojun et al. Poult Sci. (2018). 97(11):3899-3909 29982682 | PM | 2018.11 | Gut microbiota correlates with fiber and apparent nutrients digestion in goose. | 4 | 0.9 | 3 | --- | ||
| Allaart, Janneke G et al. Comp Immunol Microbiol Infect Dis. (2013). 36(5):449-64 23790636 | PM | R | 2013.09 | Predisposing factors and prevention of Clostridium perfringens-associated enteritis. | 8 | 0.8 | 2 | --- | |
| Zhou, Bian-Hua et al. Poult Sci. (2020). 99(3):1297-1305 32111306 | PM | 2020.03 | Effects of Eimeria tenella infection on the barrier damage and microbiota diversity of chicken cecum. | 7 | 2.3 | 1 | --- | ||
| Józefiak, Agata et al. Animals (Basel). (2020). 10(4) 32235462 | PM | 2020.03 | Improvement of Cecal Commensal Microbiome Following the Insect Additive into Chicken Diet. | 6 | 2.0 | 2 | --- | ||
| Wang, Wen et al. Int Microbiol. (2019). 22(4):491-500 31020476 | PM | 2019.12 | Composition, diversity and function of gastrointestinal microbiota in wild red-billed choughs (Pyrrhocorax pyrrhocorax). | 5 | 1.5 | 2 | --- | ||
| Chang, Juan et al. Ecotoxicol Environ Saf. (2020). 194:110420 32151861 | PM | 2020.05 | Compound probiotics alleviating aflatoxin B1 and zearalenone toxic effects on broiler production performance and gut microbiota. | 6 | 2.1 | 1 | --- | ||
| Takeshita, Nachiko et al. BMC Vet Res. (2021). 17(1):10 33407476 | PM | 2021.01 | Transition of microbiota in chicken cecal droppings from commercial broiler farms. | 0 | 0.0 | 0 | --- | ||
| Wang, Wen et al. Microbiologyopen. (2019). 8(5):e00725 30296008 | PM | 2019.05 | Comparative metagenomics of the gut microbiota in wild greylag geese (Anser anser) and ruddy shelducks (Tadorna ferruginea). | 6 | 1.6 | 2 | --- | ||
| Hubert, Shawna Marie et al. Animals (Basel). (2019). 9(12) 31817422 | PM | 2019.12 | The Role of Housing Environment and Dietary Protein Source on the Gut Microbiota of Chicken. | 10 | 3.1 | 3 | --- | ||
| Samanta, A K et al. Braz J Microbiol. (2013). 44(1):1-14 24159277 | PM | R | 2013.05 | Prebiotic inulin: Useful dietary adjuncts to manipulate the livestock gut microflora. | 12 | 1.2 | 0 | --- | |
| Rodrigues, D R et al. Front Physiol. (2020). 11:20 32116744 | PM | 2020.00 | A Proteomic View of the Cross-Talk Between Early Intestinal Microbiota and Poultry Immune System. | 6 | 1.8 | 0 | --- | ||
| Bortoluzzi, Cristiano et al. Front Vet Sci. (2020). 7:13 32064270 | PM | R | 2020.00 | Influence of Dietary Zinc, Copper, and Manganese on the Intestinal Health of Broilers Under Eimeria Challenge. | 3 | 0.9 | 0 | --- | |
| Zou, X et al. Poult Sci. (2019). 98(10):4449-4456 31162611 | PM | 2019.10 | Effects of sodium butyrate on intestinal health and gut microbiota composition during intestinal inflammation progression in broilers. | 17 | 5.0 | 3 | --- | ||
| Rubio, Luis A Poult Sci. (2019). 98(2):695-706 30247675 | PM | R | 2019.02 | Possibilities of early life programming in broiler chickens via intestinal microbiota modulation. | 34 | 8.3 | 10 | --- | |
| Kolba, Nikolai et al. Food Chem Toxicol. (2020). 135:110896 31654707 | PM | 2020.01 | Intra-amniotic administration (Gallus gallus) of TiO2, SiO2, and ZnO nanoparticles affect brush border membrane functionality and alters gut microflora populations. | 2 | 0.6 | 0 | --- | ||
| Cui, Yizhe et al. Front Microbiol. (2017). 8:1310 28744281 | PM | 2017.00 | Age-Related Variations in Intestinal Microflora of Free-Range and Caged Hens. | 25 | 4.0 | 11 | --- | ||
| Shi, Dayou et al. Poult Sci. (2019). 98(6):2405-2413 30715508 | PM | 2019.06 | Impact of gut microbiota structure in heat-stressed broilers. | 24 | 6.4 | 8 | --- | ||
| Molnár, Andor et al. Animals (Basel). (2020). 10(12) 33261054 | PM | 2020.11 | Effects of Wheat Bran and Clostridium butyricum Supplementation on Cecal Microbiota, Short-Chain Fatty Acid Concentration, pH and Histomorphometry in Broiler Chickens. | 5 | 2.1 | 2 | --- | ||
| Madigan-Stretton, Jacoba et al. Animals (Basel). (2020). 11(1) 33374896 | PM | 2020.12 | Multienzyme Super-Dosing in Broiler Chicken Diets: The Implications for Gut Morphology, Microbial Profile, Nutrient Digestibility, and Bone Mineralization. | 0 | 0.0 | 0 | --- | ||
| Biasato, Ilaria et al. Animals (Basel). (2020). 10(10) 33081043 | PM | 2020.10 | Yellow Mealworm Inclusion in Diets for Heavy-Size Broiler Chickens: Implications for Intestinal Microbiota and Mucin Dynamics. | 1 | 0.4 | 0 | --- | ||
| Śliżewska, Katarzyna et al. FEMS Microbiol Lett. (2019). 366(11) 31189181 | PM | 2019.06 | Effects of synbiotics on the gut microbiota, blood and rearing parameters of chickens. | 6 | 1.6 | 3 | --- | ||
| He, Yang et al. Poult Sci. (2020). 99(12):7055-7065 33248622 | PM | 2020.12 | Highly nutritious diet resists Salmonella Typhimurium infections by improving intestinal microbiota and morphology in broiler chickens. | 7 | 3.1 | 2 | --- | ||
| Herrero-Encinas, J et al. Poult Sci. (2020). 99(1):2-10 32416802 | PM | 2020.01 | Effects of a bioactive olive pomace extract from Olea europaea on growth performance, gut function, and intestinal microbiota in broiler chickens. | 15 | 4.7 | 4 | --- | ||
| Yan, Junshu et al. Poult Sci. (2019). 98(10):4673-4684 30993344 | PM | 2019.10 | Fermented feed regulates growth performance and the cecal microbiota community in geese. | 9 | 2.6 | 3 | --- | ||
| Yong, Ting et al. Pharm Biol. (2020). 58(1):636-645 32634340 | PM | 2020.12 | Anticoccidial effect of Fructus Meliae toosendan extract against Eimeria tenella. | 3 | 1.3 | 0 | --- | ||
| Biasato, Ilaria et al. J Anim Sci Biotechnol. (2020). 11:11 32025297 | PM | 2020.00 | Black soldier fly and gut health in broiler chickens: insights into the relationship between cecal microbiota and intestinal mucin composition. | 7 | 2.2 | 2 | --- | ||
| Nakphaichit, M et al. Benef Microbes. (2019). 10(1):43-54 30406695 | PM | 2019.02 | Protective effect of Lactobacillus reuteri KUB-AC5 against Salmonella Enteritidis challenge in chickens. | 10 | 2.4 | 2 | --- | ||
| Turcotte, Catherine et al. Front Vet Sci. (2020). 7:547181 33409294 | PM | 2020.00 | Impacts of Short-Term Antibiotic Withdrawal and Long-Term Judicious Antibiotic Use on Resistance Gene Abundance and Cecal Microbiota Composition on Commercial Broiler Chicken Farms in Québec. | 2 | 0.6 | 0 | --- | ||
| Jha, Rajesh et al. Animals (Basel). (2020). 10(10) 33066185 | PM | R | 2020.10 | Probiotics (Direct-Fed Microbials) in Poultry Nutrition and Their Effects on Nutrient Utilization, Growth and Laying Performance, and Gut Health: A Systematic Review. | 21 | 8.7 | 5 | --- | |
| Meijerink, Nathalie et al. Front Vet Sci. (2020). 7:584561 33330708 | PM | 2020.00 | Early Life Inoculation With Adult-Derived Microbiota Accelerates Maturation of Intestinal Microbiota and Enhances NK Cell Activation in Broiler Chickens. | 5 | 1.5 | 3 | --- | ||
| Kubasova, Tereza et al. PLoS One. (2019). 14(3):e0212446 30840648 | PM | 2019.00 | Contact with adult hen affects development of caecal microbiota in newly hatched chicks. | 32 | 7.5 | 19 | --- | ||
| Micciche, Andrew C et al. Front Vet Sci. (2018). 5:191 30159318 | PM | R | 2018.00 | A Review of Prebiotics Against Salmonella in Poultry: Current and Future Potential for Microbiome Research Applications. | 30 | 5.7 | 6 | --- | |
| Pereira, Rafaela et al. J Anim Physiol Anim Nutr (Berl). (2019). 103(1):72-86 30485573 | PM | C | 2019.01 | Performance and intestinal microbiota of chickens receiving probiotic in the feed and submitted to antibiotic therapy. | 13 | 3.1 | 5 | --- | |
| Zhou, Qianqian et al. Front Vet Sci. (2021). 8:712226 34527716 | PM | 2021.00 | The Spatial and Temporal Characterization of Gut Microbiota in Broilers. | 0 | 0.0 | 0 | --- | ||
| Konieczka, Paweł et al. J Sci Food Agric. (2020). 100(11):4217-4225 32378238 | PM | 2020.08 | Effects of faba bean extrusion and phytase supplementation on performance, phosphorus and nitrogen retention, and gut microbiota activity in broilers. | 3 | 1.2 | 0 | --- | ||
| Lee, Sangwon et al. Sci Rep. (2019). 9(1):6838 31048728 | PM | 2019.05 | Characterization of microbial communities in the chicken oviduct and the origin of chicken embryo gut microbiota. | 21 | 5.5 | 5 | --- | ||
| Chen, Xiuqin et al. Microb Pathog. (2019). 137:103764 31585153 | PM | 2019.12 | Impacts of novel duck reovirus infection on the composition of intestinal microbiota of Muscovy ducklings. | 4 | 1.2 | 1 | --- | ||
| Xi, Yumeng et al. Poult Sci. (2019). 98(11):5361-5373 31250018 | PM | 2019.11 | Gut microbiota dysbiosis increases the risk of visceral gout in goslings through translocation of gut-derived lipopolysaccharide. | 10 | 3.0 | 3 | --- | ||
| Xiao, Yingping et al. Poult Sci. (2017). 96(5):1387-1393 28339527 | PM | 2017.05 | Microbial community mapping in intestinal tract of broiler chicken. | 51 | 8.7 | 21 | --- | ||
| Kiarie, Elijah et al. Nutr Res Rev. (2013). 26(1):71-88 23639548 | PM | R | 2013.06 | The role of added feed enzymes in promoting gut health in swine and poultry. | 71 | 7.3 | 8 | --- | |
| Chen, Yuan et al. BMC Vet Res. (2019). 15(1):77 30841884 | PM | 2019.03 | Effect of green tea and mulberry leaf powders on the gut microbiota of chicken. | 10 | 2.5 | 2 | --- | ||
| Tian, Yong et al. Poult Sci. (2020). 99(5):2662-2674 32359603 | PM | 2020.05 | High-temperature exposure alters the community structure and functional features of the intestinal microbiota in Shaoxing ducks (Anas platyrhynchos). | 4 | 1.4 | 1 | --- | ||
| Wang, Lingling et al. Front Microbiol. (2016). 7:593 27242676 | PM | 2016.00 | Intestinal Microbiota of Broiler Chickens As Affected by Litter Management Regimens. | 42 | 5.8 | 16 | --- | ||
| Lunedo, Raquel et al. J Anim Physiol Anim Nutr (Berl). (2019). 103(4):1070-1080 30934145 | PM | C | 2019.07 | Intestinal microbiota of broilers submitted to feeding restriction and its relationship to hepatic metabolism and fat mass: Fast-growing strain. | 0 | 0.0 | 0 | --- | |
| Losada-Medina, Daniela et al. Poult Sci. (2020). 99(6):2992-3000 32475434 | PM | 2020.06 | Identification, tissue characterization, and innate immune role of Angiogenin-4 expression in young broiler chickens. | 2 | 0.7 | 0 | --- | ||
| Warkentin, Tom et al. Nutrients. (2020). 12(9) 32847024 | PM | 2020.08 | Low Phytate Peas (Pisum sativum L.) Improve Iron Status, Gut Microbiome, and Brush Border Membrane Functionality In Vivo (Gallus gallus). | 4 | 1.5 | 0 | --- | ||
| Lin, W C; Lee, T T Poult Sci. (2020). 99(7):3606-3616 32616257 | PM | 2020.07 | Laetiporus sulphureus-fermented wheat bran enhanced the broiler growth performance by improving the intestinal microflora and inflammation status. | 3 | 1.1 | 1 | --- | ||
| Luo, Qin et al. Biol Trace Elem Res. (2016). 173(2):483-91 26997344 | PM | 2016.10 | Dietary High Fluorine Alters Intestinal Microbiota in Broiler Chickens. | 13 | 2.0 | 0 | --- | ||
| Wei, S et al. Poult Sci. (2013). 92(3):671-83 23436518 | PM | 2013.03 | Bacterial census of poultry intestinal microbiome. | 143 | 14.3 | 64 | --- | ||
| Even, Maxime et al. Open Microbiol J. (2018). 12:71-93 29755604 | PM | 2018.00 | Probiotics Strains Modulate Gut Microbiota and Lipid Metabolism in Mule Ducks. | 3 | 0.6 | 1 | --- | ||
| Xu, Puzhi et al. Viruses. (2019). 11(11) 31744152 | PM | 2019.11 | A Multi-Omics Study of Chicken Infected by Nephropathogenic Infectious Bronchitis Virus. | 4 | 1.2 | 1 | --- | ||
| Mancabelli, Leonardo et al. Environ Microbiol. (2016). 18(12):4727-4738 27129897 | PM | 2016.12 | Insights into the biodiversity of the gut microbiota of broiler chickens. | 57 | 9.1 | 17 | --- | ||
| Ren, Hao et al. Microorganisms. (2019). 7(12) 31835884 | PM | 2019.12 | Synergistic Effects of Probiotics and Phytobiotics on the Intestinal Microbiota in Young Broiler Chicken. | 12 | 3.7 | 1 | --- | ||
| Zhang, Beibei et al. Poult Sci. (2020). 99(4):1862-1874 32241466 | PM | 2020.04 | Dietary l-arginine supplementation ameliorates inflammatory response and alters gut microbiota composition in broiler chickens infected with Salmonella enterica serovar Typhimurium. | 6 | 2.1 | 1 | --- | ||
| Liu, Jing et al. J Anim Sci Biotechnol. (2021). 12(1):22 33573700 | PM | 2021.02 | Linkage between the intestinal microbiota and residual feed intake in broiler chickens. | 3 | 1.4 | 1 | --- | ||
| Chintoan-Uta, Cosmin et al. Appl Environ Microbiol. (2020). 86(7) 31980428 | PM | 2020.03 | Role of Cecal Microbiota in the Differential Resistance of Inbred Chicken Lines to Colonization by Campylobacter jejuni. | 3 | 1.0 | 0 | --- | ||
| Śliżewska, Katarzyna et al. Toxins (Basel). (2020). 12(9) 32916893 | PM | 2020.09 | The Effect of Using New Synbiotics on the Turkey Performance, the Intestinal Microbiota and the Fecal Enzymes Activity in Turkeys Fed Ochratoxin A Contaminated Feed. | 3 | 1.2 | 0 | --- | ||
| Emami, Nima K et al. Front Vet Sci. (2020). 7:572142 33324697 | PM | 2020.00 | Effect of Probiotics and Multi-Component Feed Additives on Microbiota, Gut Barrier and Immune Responses in Broiler Chickens During Subclinical Necrotic Enteritis. | 6 | 1.8 | 2 | --- | ||
| Biasato, Ilaria et al. Animals (Basel). (2019). 9(5) 31058804 | PM | 2019.05 | Gut Microbiota and Mucin Composition in Female Broiler Chickens Fed Diets including Yellow Mealworm (Tenebrio molitor, L.). | 13 | 3.4 | 3 | --- | ||
| Hamid, H et al. Poult Sci. (2019). 98(6):2509-2521 30690636 | PM | 2019.06 | Interactions between the cecal microbiota and non-alcoholic steatohepatitis using laying hens as the model. | 7 | 1.9 | 4 | --- | ||
| Robino, Patrizia et al. Avian Pathol. (2019). 48(2):111-120 30499334 | PM | 2019.04 | Changes in gut bacterial communities in canaries infected by Macrorhabdus ornithogaster. | 4 | 1.0 | 2 | --- | ||
| Segura-Wang, Maia et al. Front Microbiol. (2021). 12:726923 34484168 | PM | 2021.00 | Genome-Resolved Metagenomics of the Chicken Gut Microbiome. | 2 | 0.9 | 0 | --- | ||
| Hird, Sarah M et al. Front Microbiol. (2015). 6:1403 26733954 | PM | 2015.00 | Comparative Gut Microbiota of 59 Neotropical Bird Species. | 81 | 9.8 | 16 | --- | ||
| Gangadoo, Sheeana et al. Environ Sci Pollut Res Int. (2020). 27(14):16159-16166 32107689 | PM | 2020.05 | Nanoparticles of selenium as high bioavailable and non-toxic supplement alternatives for broiler chickens. | 9 | 3.2 | 1 | --- | ||
| Lu, Mingmin et al. Res Vet Sci. (2020). 132:142-149 32575030 | PM | 2020.10 | Effects of Eimeria maxima and Clostridium perfringens infections on cecal microbial composition and the possible correlation with body weight gain in broiler chickens. | 5 | 2.1 | 1 | --- | ||
| De Maesschalck, C et al. Appl Environ Microbiol. (2015). 81(17):5880-8 26092452 | PM | 2015.09 | Effects of Xylo-Oligosaccharides on Broiler Chicken Performance and Microbiota. | 67 | 8.9 | 15 | --- | ||
| Zhai, S S et al. Poult Sci. (2020). 99(2):1124-1134 32036964 | PM | 2020.02 | Protective effect of curcumin on ochratoxin A-induced liver oxidative injury in duck is mediated by modulating lipid metabolism and the intestinal microbiota. | 14 | 4.5 | 2 | --- | ||
| Vandeplas, S et al. J Food Prot. (2010). 73(4):774-85 20377971 | PM | R | 2010.04 | Salmonella in chicken: current and developing strategies to reduce contamination at farm level. | 30 | 2.3 | 0 | --- | |
| Gao, Pengfei et al. Microbiome. (2017). 5(1):91 28768551 | PM | 2017.08 | Feed-additive probiotics accelerate yet antibiotics delay intestinal microbiota maturation in broiler chicken. | 56 | 10.0 | 21 | --- | ||
| Wu, Yuqin et al. Anim Biotechnol. (2020). 31(6):520-531 31253055 | PM | 2020.12 | Flaxseed diet caused inflammation by altering the gut microbiota of Peking ducks. | 5 | 2.2 | 1 | --- | ||
| Gangadoo, Sheeana et al. Anim Nutr. (2019). 5(4):424-431 31890921 | PM | 2019.12 | In vitro growth of gut microbiota with selenium nanoparticles. | 7 | 2.2 | 1 | --- | ||
| Juste Contin Gomes, Mariana et al. Nutrients. (2021). 13(1) 33435398 | PM | S | 2021.01 | Effects of Iron and Zinc Biofortified Foods on Gut Microbiota In Vivo (Gallus gallus): A Systematic Review. | 3 | 1.4 | 1 | --- | |
| Kierończyk, Bartosz et al. Animals (Basel). (2020). 10(1) 31936255 | PM | 2020.01 | Nisin as a Novel Feed Additive: The Effects on Gut Microbial Modulation and Activity, Histological Parameters, and Growth Performance of Broiler Chickens. | 6 | 1.9 | 1 | --- | ||
| Wang, Yang et al. Poult Sci. (2020). 99(11):6196-6204 33142537 | PM | 2020.11 | Effects of manganese and Bacillus subtilis on the reproductive performance, egg quality, antioxidant capacity, and gut microbiota of breeding geese during laying period. | 2 | 0.9 | 0 | --- | ||
| Donaldson, Erin E et al. PeerJ. (2017). 5:e3587 28740754 | PM | 2017.00 | The time-course of broiler intestinal microbiota development after administration of cecal contents to incubating eggs. | 32 | 5.1 | 17 | --- | ||
| Islam, Md Rashedul et al. Poult Sci. (2019). 98(9):3739-3755 30918964 | PM | 2019.09 | Effects of wild blueberry (Vaccinium angustifolium) pomace feeding on gut microbiota and blood metabolites in free-range pastured broiler chickens. | 9 | 2.6 | 4 | --- | ||
| Reed, Spenser et al. Nutrients. (2015). 7(12):9768-84 26633470 | PM | C | 2015.11 | Chronic Zinc Deficiency Alters Chick Gut Microbiota Composition and Function. | 62 | 8.5 | 6 | --- | |
| Huang, Peng et al. Res Vet Sci. (2021). 135:8-14 33412475 | PM | C | 2021.03 | Fermented traditional Chinese medicine alters the intestinal microbiota composition of broiler chickens. | 1 | 0.5 | 0 | --- | |
| Tian, Dandan et al. 3 Biotech. (2019). 9(2):54 30729078 | PM | 2019.02 | In vitro fermentation of arabinoxylan from oat (Avena sativa L.) by Pekin duck intestinal microbiota. | 2 | 0.5 | 0 | --- | ||
| Kers, Jannigje G et al. Microorganisms. (2019). 7(10) 31658673 | PM | 2019.10 | Comparison of Different Invasive and Non-Invasive Methods to Characterize Intestinal Microbiota throughout a Production Cycle of Broiler Chickens. | 8 | 2.3 | 6 | --- | ||
| Sabour, Sakineh et al. Anim Nutr. (2019). 5(2):156-162 31193926 | PM | 2019.06 | Dietary organic acid and fiber sources affect performance, intestinal morphology, immune responses and gut microflora in broilers. | 9 | 2.4 | 2 | --- | ||
| Shi, Shuiqin et al. Microb Pathog. (2020). 138:103849 31704465 | PM | 2020.01 | Effects of probiotics on cecal microbiome profile altered by duck Escherichia coli 17 infection in Cherry Valley ducks. | 7 | 2.2 | 3 | --- | ||
| Huang, Guangping et al. Vet Parasitol. (2018). 258:30-37 30105975 | PM | 2018.07 | Eimeria tenella infection perturbs the chicken gut microbiota from the onset of oocyst shedding. | 7 | 1.5 | 3 | --- | ||
| Zhou, Haizhu et al. Poult Sci. (2018). 97(6):2086-2094 29452399 | PM | 2018.06 | Response of goose intestinal microflora to the source and level of dietary fiber. | 0 | 0.0 | 0 | --- | ||
| Ilchyshyn, Nicholas P; Monti, Paola J Vet Diagn Invest. (2019). 31(3):382-384 30029578 | PM | 2019.05 | Extra-enteric Blastocystis infection in a duck. | 0 | 0.0 | 0 | --- | ||
| Abad, Paloma et al. Animals (Basel). (2020). 11(1) 33379216 | PM | 2020.12 | Effect of Allium Extract Supplementation on Egg Quality, Productivity, and Intestinal Microbiota of Laying Hens. | 3 | 1.3 | 1 | --- | ||
| Yu, Haichuan et al. J Sci Food Agric. (2020). 100(9):3622-3629 32198763 | PM | 2020.07 | A comparative study of the modulation of the gut microbiota in rats by dietary intervention with different sources of egg-white proteins. | 3 | 1.1 | 0 | --- | ||
| Biasato, Ilaria et al. BMC Vet Res. (2018). 14(1):383 30514391 | PM | 2018.12 | Modulation of intestinal microbiota, morphology and mucin composition by dietary insect meal inclusion in free-range chickens. | 33 | 7.8 | 10 | --- | ||
| Wu, Yanping et al. Poult Sci. (2021). 100(9):101315 34280650 | PM | C | 2021.09 | Serum metabolome and gut microbiome alterations in broiler chickens supplemented with lauric acid. | 1 | 0.7 | 0 | --- | |
| Ricke, Steven C Poult Sci. (2021). 100(7):101174 34102481 | PM | R | 2021.07 | Prebiotics and alternative poultry production. | 1 | 0.6 | 0 | --- | |
| Gangadoo, Sheeana et al. Appl Microbiol Biotechnol. (2018). 102(3):1455-1466 29250719 | PM | 2018.02 | Selenium nanoparticles in poultry feed modify gut microbiota and increase abundance of Faecalibacterium prausnitzii. | 25 | 4.9 | 5 | --- | ||
| Ekim, Burcu et al. Poult Sci. (2020). 99(1):214-223 32416805 | PM | 2020.01 | Effects of Paenibacillus xylanexedens on growth performance, intestinal histomorphology, intestinal microflora, and immune response in broiler chickens challenged with Escherichia coli K88. | 1 | 0.3 | 0 | --- | ||
| Zhai, Shuangshuang et al. Poult Sci. (2021). 100(5):101037 33752074 | PM | R | 2021.05 | Ochratoxin A: its impact on poultry gut health and microbiota, an overview. | 3 | 1.6 | 0 | --- | |
| Yausheva, Еlena et al. Environ Sci Pollut Res Int. (2018). 25(18):18109-18120 29691748 | PM | 2018.06 | Intestinal microbiome of broiler chickens after use of nanoparticles and metal salts. | 9 | 1.9 | 1 | --- | ||
| Shu, Gang et al. Sci Rep. (2020). 10(1):12324 32704000 | PM | 2020.07 | Bamboo leaf flavone changed the community of cecum microbiota and improved the immune function in broilers. | 3 | 1.1 | 0 | --- | ||
| Bortolaia, V et al. Clin Microbiol Infect. (2016). 22(2):130-140 26706616 | PM | R | 2016.02 | Human health risks associated with antimicrobial-resistant enterococci and Staphylococcus aureus on poultry meat. | 22 | 3.1 | 5 | --- | |
| Herrero-Encinas, J et al. Poult Sci. (2019) 31399739 | PM | 2019.08 | Effects of a bioactive olive pomace extract from Olea europaea on growth performance, gut function, and intestinal microbiota in broiler chickens. | 2 | 0.6 | 0 | --- | ||
| Yang, Yuzhan et al. Sci Rep. (2016). 6:32655 27600170 | PM | 2016.09 | Characterising the interspecific variations and convergence of gut microbiota in Anseriformes herbivores at wintering areas. | 16 | 2.5 | 4 | --- | ||
| Panaite, Tatiana Dumitra et al. Animals (Basel). (2020). 10(6) 32486449 | PM | 2020.05 | Influence of Dietary Supplementation of Salix alba Bark on Performance, Oxidative Stress Parameters in Liver and Gut Microflora of Broilers. | 4 | 1.4 | 0 | --- | ||
| Rubio, L A et al. J Anim Physiol Anim Nutr (Berl). (2015). 99(3):418-23 25266875 | PM | C | 2015.06 | Correlations between changes in intestinal microbiota composition and performance parameters in broiler chickens. | 18 | 2.3 | 6 | --- | |
| Bauer, Benjamin W et al. Heliyon. (2019). 5(10):e02625 31667426 | PM | 2019.10 | Oregano: A potential prophylactic treatment for the intestinal microbiota. | 6 | 1.8 | 2 | --- | ||
| Dumonceaux, Tim J et al. Appl Environ Microbiol. (2006). 72(4):2815-23 16597987 | PM | 2006.04 | Characterization of intestinal microbiota and response to dietary virginiamycin supplementation in the broiler chicken. | 67 | 4.0 | 17 | --- | ||
| Feng, Yan et al. Poult Sci. (2019) 31424517 | PM | 2019.08 | Fermented wheat bran by xylanase-producing Bacillus cereus boosts the intestinal microflora of broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Metzler-Zebeli, Barbara U et al. mSystems. 4(1) 30701192 | PM | 2019.00 | Feed Restriction Modifies Intestinal Microbiota-Host Mucosal Networking in Chickens Divergent in Residual Feed Intake. | 12 | 2.8 | 3 | --- | ||
| Zaboli, Gholamreza et al. Poult Sci. (2019). 98(3):1551-1556 30169735 | PM | R | 2019.03 | How can heat stress affect chicken meat quality? - a review. | 33 | 8.2 | 0 | --- | |
| Ma, Tao et al. Vet Immunol Immunopathol. (2018). 205:35-48 30459000 | PM | R | 2018.11 | Dissect the mode of action of probiotics in affecting host-microbial interactions and immunity in food producing animals. | 17 | 3.9 | 1 | --- | |
| Crhanova, Magdalena et al. Infect Immun. (2011). 79(7):2755-63 21555397 | PM | 2011.07 | Immune response of chicken gut to natural colonization by gut microflora and to Salmonella enterica serovar enteritidis infection. | 92 | 7.9 | 25 | --- | ||
| Verdonk, J M A J et al. Br J Nutr. (2005). 93 Suppl 1:S125-38 15877885 | PM | R | 2005.04 | Application of inulin-type fructans in animal feed and pet food. | 9 | 0.5 | 1 | --- | |
| Peng, Lu-Yuan et al. Vet Microbiol. (2021). 261:109187 34399296 | PM | 2021.10 | Protective effects of gut microbiota and gut microbiota-derived acetate on chicken colibacillosis induced by avian pathogenic Escherichia coli. | 2 | 1.4 | 0 | --- | ||
| Gong, Yujie et al. Front Microbiol. (2019). 10:1422 31293552 | PM | 2019.00 | Early Intervention With Cecal Fermentation Broth Regulates the Colonization and Development of Gut Microbiota in Broiler Chickens. | 12 | 2.8 | 4 | --- | ||
| Betancourt, Liliana et al. Poult Sci. (2019). 98(10):4777-4786 30995320 | PM | 2019.10 | Effects of Colombian oregano essential oil (Lippia origanoides Kunth) and Eimeria species on broiler production and cecal microbiota. | 7 | 2.0 | 2 | --- | ||
| Guitton, Edouard et al. J Vis Exp. (2020)(160) 32628163 | PM | 2020.06 | Production of Germ-Free Fast-Growing Broilers from a Commercial Line for Microbiota Studies. | 1 | 0.4 | 1 | --- | ||
| Wang, Shumei et al. Sci Rep. (2018). 8(1):7387 29743727 | PM | 2018.05 | Different rearing conditions alter gut microbiota composition and host physiology in Shaoxing ducks. | 16 | 3.3 | 6 | --- | ||
| He, Jun et al. Front Microbiol. (2019). 10:903 31105682 | PM | 2019.00 | Associations of Gut Microbiota With Heat Stress-Induced Changes of Growth, Fat Deposition, Intestinal Morphology, and Antioxidant Capacity in Ducks. | 21 | 4.9 | 5 | --- | ||
| Chang, Chi Huan et al. J Poult Sci. (2019). 56(1):32-43 32055194 | PM | 2019.01 | Effects of Multi-Strain Probiotics Combined with Gardeniae fructus on Intestinal Microbiota, Metabolites, and Morphology in Broilers. | 2 | 0.5 | 1 | --- | ||
| Han, Hongyu et al. Animals (Basel). (2021). 11(6) 34201291 | PM | 2021.06 | Effects of Ammonia on Gut Microbiota and Growth Performance of Broiler Chickens. | 2 | 1.1 | 0 | --- | ||
| Shakouri, M D et al. J Anim Physiol Anim Nutr (Berl). (2009). 93(5):647-58 18700849 | PM | C | 2009.10 | Intestinal function and gut microflora of broiler chickens as influenced by cereal grains and microbial enzyme supplementation. | 27 | 2.0 | 9 | --- | |
| Yousaf, M S et al. Br Poult Sci. (2017). 58(2):122-131 27869509 | PM | 2017.04 | Encapsulated benzoic acid supplementation in broiler diets influences gut bacterial composition and activity. | 4 | 0.7 | 1 | --- | ||
| Luo, Jianjie et al. J Proteomics. (2013). 91:226-41 23899589 | PM | 2013.10 | Proteome changes in the intestinal mucosa of broiler (Gallus gallus) activated by probiotic Enterococcus faecium. | 25 | 2.7 | 5 | --- | ||
| Bortoluzzi, C et al. Poult Sci. (2019). 98(7):2800-2812 30877749 | PM | 2019.07 | Effect of different challenge models to induce necrotic enteritis on the growth performance and intestinal microbiota of broiler chickens. | 8 | 2.2 | 4 | --- | ||
| Xu, Yunhe et al. Front Physiol. (2019). 10:937 31404251 | PM | 2019.00 | Probiotic Properties of Lactobacillus paracasei subsp. paracasei L1 and Its Growth Performance-Promotion in Chicken by Improving the Intestinal Microflora. | 7 | 1.6 | 0 | --- | ||
| Chee, S H et al. Br Poult Sci. (2010). 51(3):368-80 20680872 | PM | 2010.06 | Characterisation and response of intestinal microflora and mucins to manno-oligosaccharide and antibiotic supplementation in broiler chickens. | 9 | 0.7 | 2 | --- | ||
| Kaakoush, Nadeem O et al. Gut Pathog. (2014). 6:18 24940386 | PM | 2014.00 | The interplay between Campylobacter and Helicobacter species and other gastrointestinal microbiota of commercial broiler chickens. | 39 | 4.2 | 13 | --- | ||
| Ngunjiri, John M et al. Appl Environ Microbiol. (2019). 85(9) 30824436 | PM | 2019.05 | Farm Stage, Bird Age, and Body Site Dominantly Affect the Quantity, Taxonomic Composition, and Dynamics of Respiratory and Gut Microbiota of Commercial Layer Chickens. | 18 | 4.7 | 8 | --- | ||
| Xia, Yun et al. Poult Sci. (2019). 98(12):6942-6953 31424516 | PM | C | 2019.12 | Effects of dietary inulin supplementation on the composition and dynamics of cecal microbiota and growth-related parameters in broiler chickens. | 4 | 1.2 | 3 | --- | |
| Jiang, Jingle et al. Food Funct. (2021). 12(13):6014-6028 34036963 | PM | 2021.07 | Maternal stevioside supplementation ameliorates intestinal mucosal damage and modulates gut microbiota in chicken offspring challenged with lipopolysaccharide. | 0 | 0.0 | 0 | --- | ||
| Melaku, Mebratu et al. Int J Mol Sci. (2021). 22(19) 34638730 | PM | R | 2021.09 | Butyric and Citric Acids and Their Salts in Poultry Nutrition: Effects on Gut Health and Intestinal Microbiota. | 0 | 0.0 | 0 | --- | |
| Rashid, Zubia et al. Saudi J Biol Sci. (2020). 27(10):2747-2755 32994734 | PM | 2020.10 | Enhanced modulation of gut microbial dynamics affecting body weight in birds triggered by natural growth promoters administered in conventional feed. | 3 | 1.2 | 2 | --- | ||
| Lee, M T et al. Asian-Australas J Anim Sci. (2020). 33(7):1113-1125 31480134 | PM | 2020.07 | Effects of dietary Antrodia cinnamomea fermented product supplementation on antioxidation, anti-inflammation, and lipid metabolism in broiler chickens. | 4 | 1.5 | 1 | --- | ||
| Huang, Ting et al. Front Microbiol. (2018). 9:2754 30483244 | PM | 2018.00 | Temporal Effects of High Fishmeal Diet on Gut Microbiota and Immune Response in Clostridium perfringens-Challenged Chickens. | 8 | 1.5 | 5 | --- | ||
| Jiang, Jingle et al. J Sci Food Agric. (2021). 101(5):2156-2167 32981085 | PM | 2021.03 | Dietary stevioside supplementation increases feed intake by altering the hypothalamic transcriptome profile and gut microbiota in broiler chickens. | 3 | 1.5 | 0 | --- | ||
| Wang, Wen et al. J Basic Microbiol. (2018). 58(6):543-553 29668076 | PM | 2018.06 | Comparative analyses of the gut microbiota among three different wild geese species in the genus Anser. | 5 | 1.1 | 2 | --- | ||
| Guo, Baodi et al. PLoS One. (2019). 14(10):e0223445 31652267 | PM | 2019.00 | Comparative characterization of bacterial communities in geese consuming of different proportions of ryegrass. | 5 | 1.2 | 1 | --- | ||
| Xing, Zhikai et al. Sci Total Environ. (2021). 762:143058 33127154 | PM | 2021.03 | Disequilibrium in chicken gut microflora with avian colibacillosis is related to microenvironment damaged by antibiotics. | 2 | 1.0 | 0 | --- | ||
| J Tejeda, Oscar; K Kim, Woo Animals (Basel). (2021). 11(2) 33572459 | PM | R | 2021.02 | Role of Dietary Fiber in Poultry Nutrition. | 2 | 1.0 | 0 | --- | |
| Xu, Puzhi et al. Sci Rep. (2020). 10(1):3556 32103130 | PM | 2020.02 | 16S rRNA gene sequencing reveals an altered composition of the gut microbiota in chickens infected with a nephropathogenic infectious bronchitis virus. | 1 | 0.3 | 0 | --- | ||
| Cadwell, Kevin et al. BMC Genomics. (2017). 18(1):637 28821240 | PM | 2017.08 | AvBD1 nucleotide polymorphisms, peptide antimicrobial activities and microbial colonisation of the broiler chicken gut. | 1 | 0.2 | 0 | --- | ||
| Guaragni, Andréia et al. Microb Pathog. (2020). 139:103889 31765767 | PM | 2020.02 | Feed supplementation with inulin on broiler performance and meat quality challenged with Clostridium perfringens: Infection and prebiotic impacts. | 4 | 1.3 | 1 | --- | ||
| Xia, Yun et al. PLoS One. (2019). 14(6):e0216748 31216277 | PM | 2019.00 | Effects of dietary supplementation with lysozyme on the structure and function of the cecal microbiota in broiler chickens. | 8 | 1.9 | 1 | --- | ||
| Das, Quail et al. Front Immunol. (2021). 12:621803 34149685 | PM | 2021.00 | Effects of Vaccination Against Coccidiosis on Gut Microbiota and Immunity in Broiler Fed Bacitracin and Berry Pomace. | 0 | 0.0 | 0 | --- | ||
| Low, Kristin E et al. Microorganisms. (2020). 8(12) 33260318 | PM | 2020.11 | Combinatorial Glycomic Analyses to Direct CAZyme Discovery for the Tailored Degradation of Canola Meal Non-Starch Dietary Polysaccharides. | 2 | 0.9 | 0 | --- | ||
| Reed, Spenser et al. PLoS One. (2017). 12(8):e0182431 28796793 | PM | 2017.00 | Characterizing the gut (Gallus gallus) microbiota following the consumption of an iron biofortified Rwandan cream seeded carioca (Phaseolus Vulgaris L.) bean-based diet. | 9 | 1.4 | 3 | --- | ||
| Saeed, Muhammad et al. Poult Sci. (2019). 98(2):842-854 30169691 | PM | 2019.02 | 16S ribosomal RNA sequencing reveals a modulation of intestinal microbiome and immune response by dietary L-theanine supplementation in broiler chickens. | 5 | 1.2 | 0 | --- | ||
| Ferrario, Chiara et al. Environ Microbiol. (2017). 19(11):4771-4783 28967204 | PM | 2017.11 | Untangling the cecal microbiota of feral chickens by culturomic and metagenomic analyses. | 20 | 3.7 | 5 | --- | ||
| Tolnai, Emese et al. mSystems. (2021). 6(2) 33653943 | PM | 2021.03 | Nutraceuticals Induced Changes in the Broiler Gastrointestinal Tract Microbiota. | 2 | 1.0 | 0 | --- | ||
| Makled, M N et al. Trop Anim Health Prod. (2019). 51(8):2333-2342 31168683 | PM | 2019.11 | Comparative influence of dietary probiotic, yoghurt, and sodium butyrate on growth performance, intestinal microbiota, blood hematology, and immune response of meat-type chickens. | 4 | 1.2 | 0 | --- | ||
| Tiihonen, K et al. Br Poult Sci. (2010). 51(3):381-92 20680873 | PM | 2010.06 | The effect of feeding essential oils on broiler performance and gut microbiota. | 31 | 2.4 | 6 | --- | ||
| Ur Rahman, Sajid et al. Acta Histochem. (2017). 119(5):446-450 28495367 | PM | 2017.06 | In vivo effects of Allium cepa L. on the selected gut microflora and intestinal histomorphology in broiler. | 13 | 2.3 | 0 | --- | ||
| Richards-Rios, Peter et al. Appl Environ Microbiol. (2020). 86(5) 31862722 | PM | 2020.02 | Topical Application of Adult Cecal Contents to Eggs Transplants Spore-Forming Microbiota but Not Other Members of the Microbiota to Chicks. | 4 | 1.3 | 4 | --- | ||
| Adewole, Deborah; Akinyemi, Fisayo Microorganisms. (2021). 9(4) 33918770 | PM | 2021.04 | Gut Microbiota Dynamics, Growth Performance, and Gut Morphology in Broiler Chickens Fed Diets Varying in Energy Density with or without Bacitracin Methylene Disalicylate (BMD). | 2 | 1.0 | 0 | --- | ||
| Newbold, Lindsay K et al. ISME J. (2017). 11(3):663-675 27983724 | PM | 2017.03 | Helminth burden and ecological factors associated with alterations in wild host gastrointestinal microbiota. | 5 | 0.8 | 0 | --- | ||
| Madlala, Thabile et al. Parasite. (2021). 28:48 34076575 | PM | R | 2021.00 | Understanding the interactions between Eimeria infection and gut microbiota, towards the control of chicken coccidiosis: a review. | 4 | 1.8 | 0 | --- | |
| Ashfaq, Iram et al. Curr Microbiol. (2020). 77(9):2128-2136 32661680 | PM | 2020.09 | Growth Inhibition of Common Enteric Pathogens in the Intestine of Broilers by Microbially Produced Dextran and Levan Exopolysaccharides. | 2 | 0.8 | 0 | --- | ||
| Cui, Lei et al. Microb Pathog. (2021). 150:104710 33383151 | PM | 2021.01 | Sex differences in growth performance are related to cecal microbiota in chicken. | 4 | 1.8 | 0 | --- | ||
| Wang, Jian et al. Vet Immunol Immunopathol. (2021). 233:110192 33476924 | PM | C | 2021.03 | Lactobacillus salivarius ameliorated Mycoplasma gallisepticum-induced inflammatory injury and secondary Escherichia coli infection in chickens: Involvement of intestinal microbiota. | 4 | 2.0 | 0 | --- | |
| Jiang, Zhihui et al. Front Pharmacol. (2020). 11:585945 33519446 | PM | 2020.00 | Protective Effects of 1,8-Cineole Microcapsules Against Inflammation and Gut Microbiota Imbalance Associated Weight Loss Induced by Heat Stress in Broiler Chicken. | 3 | 0.9 | 1 | --- | ||
| Zhou, Ying et al. Ecotoxicol Environ Saf. (2021). 226:112832 34583273 | PM | 2021.12 | Ammonia exposure induced intestinal inflammation injury mediated by intestinal microbiota in broiler chickens via TLR4/TNF-α signaling pathway. | 0 | 0.0 | 0 | --- | ||
| Javandel, Faramin et al. J Poult Sci. (2019). 56(4):262-269 32055223 | PM | 2019.10 | Effects of Hogweed (Heracleum persicum) Powder, Flavophospholipol, and Probiotics as Feed Supplements on the Performance, Carcass and Blood Characteristics, Intestinal Microflora, and Immune Response in Broilers. | 5 | 1.5 | 1 | --- | ||
| Hughes, Rebecca-Ayme et al. Front Vet Sci. (2017). 4:192 29181381 | PM | 2017.00 | Impact of Dietary Galacto-Oligosaccharide (GOS) on Chicken's Gut Microbiota, Mucosal Gene Expression, and Salmonella Colonization. | 10 | 1.6 | 5 | --- | ||
| Meyer, B et al. Poult Sci. (2012). 91(7):1506-13 22700493 | PM | C | 2012.07 | Dietary inclusion of feathers affects intestinal microbiota and microbial metabolites in growing Leghorn-type chickens. | 14 | 1.3 | 5 | --- | |
| Borda-Molina, Daniel et al. Front Microbiol. (2016). 7:2033 28066358 | PM | 2016.00 | Insights into Broilers' Gut Microbiota Fed with Phosphorus, Calcium, and Phytase Supplemented Diets. | 40 | 5.5 | 11 | --- | ||
| Fagundes, N S et al. J Anim Physiol Anim Nutr (Berl). (2017). 101(5):e371-e382 28063247 | PM | C | 2017.10 | Replacing corn with sorghum in the diet alters intestinal microbiota without altering chicken performance. | 1 | 0.2 | 0 | --- | |
| Bautil, A et al. Poult Sci. (2019). 98(10):4606-4621 30993340 | PM | 2019.10 | Age-related arabinoxylan hydrolysis and fermentation in the gastrointestinal tract of broilers fed wheat-based diets. | 19 | 5.6 | 2 | --- | ||
| Jozefiak, D et al. Br Poult Sci. (2011). 52(4):492-9 21919577 | PM | 2011.08 | Dietary divercin modifies gastrointestinal microbiota and improves growth performance in broiler chickens. | 11 | 0.9 | 2 | --- | ||
| Geier, M S et al. J Appl Microbiol. (2009). 106(5):1540-8 19187131 | PM | C | 2009.05 | Indigestible carbohydrates alter the intestinal microbiota but do not influence the performance of broiler chickens. | 14 | 1.0 | 5 | --- | |
| Xiang, Xingjia et al. Front Microbiol. (2019). 10:163 30804919 | PM | 2019.00 | Significant Differences in Bacterial and Potentially Pathogenic Communities Between Sympatric Hooded Crane and Greater White-Fronted Goose. | 8 | 1.9 | 2 | --- | ||
| Sinha, Ritam et al. J Bacteriol. (2020). 202(7) 31932316 | PM | 2020.03 | Phosphate Transporter PstSCAB of Campylobacter jejuni Is a Critical Determinant of Lactate-Dependent Growth and Colonization in Chickens. | 0 | 0.0 | 0 | --- | ||
| Dho-Moulin, M; Fairbrother, J M Vet Res. 30(2-3):299-316 10367360 | PM | R | 1999.00 | Avian pathogenic Escherichia coli (APEC). | 154 | 6.4 | 2 | --- | |
33866972 | PM | .-- | 11 | 0.0 | 2 | --- | |||
| Téllez, Guillermo et al. Microb Ecol Health Dis. (2015). 26:25876 25651994 | PM | 2015.00 | Food-producing animals and their health in relation to human health. | 11 | 1.3 | 0 | --- | ||
| Gilani, Syed Muddassar Hussain et al. Saudi J Biol Sci. (2021). 28(6):3438-3447 34121882 | PM | 2021.06 | Growth performance, intestinal histomorphology, gut microflora and ghrelin gene expression analysis of broiler by supplementing natural growth promoters: A nutrigenomics approach. | 0 | 0.0 | 0 | --- | ||
| Dunislawska, A et al. Gene. (2019). 698:27-33 30831211 | PM | 2019.05 | Transcriptome modulation by in ovo delivered Lactobacillus synbiotics in a range of chicken tissues. | 15 | 3.9 | 4 | --- | ||
| Divani, A et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(1):e353-e363 28608573 | PM | C | 2018.02 | Plantago ovata in broiler chicken nutrition: Performance, carcass criteria, intestinal morphology, immunity, and intestinal bacterial population. | 2 | 0.4 | 0 | --- | |
| Proctor, Alexandra; Phillips, Gregory J Front Vet Sci. (2019). 6:114 31058171 | PM | 2019.00 | Differential Effects of Bacitracin Methylene Disalicylate (BMD) on the Distal Colon and Cecal Microbiota of Young Broiler Chickens. | 12 | 2.8 | 5 | --- | ||
| Zhang, Beibei et al. Front Microbiol. (2018). 9:1716 30108569 | PM | 2018.00 | Dietary l-arginine Supplementation Alleviates the Intestinal Injury and Modulates the Gut Microbiota in Broiler Chickens Challenged by Clostridium perfringens. | 18 | 3.4 | 6 | --- | ||
| Shehata, A A et al. Probiotics Antimicrob Proteins. (2020). 12(2):451-460 31111440 | PM | 2020.06 | Effect of a Potential Probiotic Candidate Enterococcus faecalis-1 on Growth Performance, Intestinal Microbiota, and Immune Response of Commercial Broiler Chickens. | 1 | 0.4 | 0 | --- | ||
| Bortoluzzi, Cristiano et al. Microorganisms. (2019). 7(3) 30841654 | PM | 2019.03 | Bacillus subtilis DSM 32315 Supplementation Attenuates the Effects of Clostridium perfringens Challenge on the Growth Performance and Intestinal Microbiota of Broiler Chickens. | 16 | 4.0 | 7 | --- | ||
| Yang, Yuting et al. Anim Biosci. (2021). 34(1):93-101 32898964 | PM | 2021.01 | Correlation analysis of muscle amino acid deposition and gut microbiota profile of broilers reared at different ambient temperatures. | 1 | 0.5 | 1 | --- | ||
| Mohd Shaufi, Mohd Asrore et al. Gut Pathog. (2015). 7:4 25806087 | PM | 2015.00 | Deciphering chicken gut microbial dynamics based on high-throughput 16S rRNA metagenomics analyses. | 98 | 11.9 | 51 | --- | ||
| Kenzaka, Takehiko et al. Yakugaku Zasshi. (2018). 138(1):117-122 29311457 | PM | 2018.00 | [Intestinal Microbiota in Migrating Barn Swallows around Osaka]. | 0 | 0.0 | 0 | --- | ||
| Tzora, Athina et al. J Poult Sci. (2017). 54(3):218-227 32908429 | PM | 2017.07 | Effects of Oregano, Attapulgite, Benzoic Acid and their Blend on Chicken Performance, Intestinal Microbiology and Intestinal Morphology. | 3 | 0.5 | 1 | --- | ||
| D'Andreano, Sara et al. Poult Sci. (2017). 96(10):3550-3558 28938792 | PM | 2017.10 | Gastrointestinal microbial population of turkey (Meleagris gallopavo) affected by hemorrhagic enteritis virus. | 13 | 2.4 | 5 | --- | ||
| Jazi, V et al. Poult Sci. (2019). 98(11):5648-5660 31247644 | PM | 2019.11 | Fermented soybean meal ameliorates Salmonella Typhimurium infection in young broiler chickens. | 9 | 2.7 | 2 | --- | ||
| Choi, J H et al. Poult Sci. (2014). 93(8):1942-50 24931967 | PM | 2014.08 | Spatial heterogeneity and stability of bacterial community in the gastrointestinal tracts of broiler chickens. | 49 | 5.7 | 18 | --- | ||
| Gharib-Naseri, K et al. Poult Sci. (2019). 98(12):6422-6432 31424518 | PM | 2019.12 | Two different Clostridium perfringens strains produce different levels of necrotic enteritis in broiler chickens. | 16 | 4.9 | 4 | --- | ||
| Paul, Shyam Sundar et al. Microorganisms. (2021). 9(2) 33672925 | PM | 2021.02 | Gut Microbial Composition Differs Extensively among Indian Native Chicken Breeds Originated in Different Geographical Locations and a Commercial Broiler Line, but Breed-Specific, as Well as Across-Breed Core Microbiomes, Are Found. | 1 | 0.5 | 0 | --- | ||
| Siddik, Muhammad A B et al. Front Physiol. (2019). 10:1635 32082185 | PM | 2019.00 | Fermented Animal Source Protein as Substitution of Fishmeal on Intestinal Microbiota, Immune-Related Cytokines and Resistance to Vibrio mimicus in Freshwater Crayfish (Cherax cainii). | 1 | 0.2 | 0 | --- | ||
| Willson, Nicky-Lee et al. Appl Microbiol Biotechnol. (2018). 102(21):9317-9329 30151605 | PM | 2018.11 | Correlations between intestinal innate immune genes and cecal microbiota highlight potential for probiotic development for immune modulation in poultry. | 4 | 0.9 | 1 | --- | ||
| Dunislawska, Aleksandra et al. Front Vet Sci. (2020). 7:632476 33614758 | PM | 2020.00 | Molecular Response in Intestinal and Immune Tissues to in Ovo Administration of Inulin and the Combination of Inulin and Lactobacillus lactis Subsp. cremoris. | 3 | 0.9 | 0 | --- | ||
| Pedroso, Adriana A et al. Am J Vet Res. (2016). 77(5):514-26 27111019 | PM | 2016.05 | Effect of in ovo administration of an adult-derived microbiota on establishment of the intestinal microbiome in chickens. | 27 | 4.0 | 9 | --- | ||
| Rodríguez, María Luisa et al. J Sci Food Agric. (2012). 92(1):184-90 21780133 | PM | 2012.01 | Wheat- and barley-based diets with or without additives influence broiler chicken performance, nutrient digestibility and intestinal microflora. | 17 | 1.5 | 5 | --- | ||
| Awad, Wageha A et al. Front Cell Infect Microbiol. (2016). 6:154 27921008 | PM | 2016.00 | Age-Related Differences in the Luminal and Mucosa-Associated Gut Microbiome of Broiler Chickens and Shifts Associated with Campylobacter jejuni Infection. | 55 | 7.6 | 24 | --- | ||
| Li, Jun et al. Front Microbiol. (2017). 8:1711 28943868 | PM | 2017.00 | Microbial Shifts in the Intestinal Microbiota of Salmonella Infected Chickens in Response to Enrofloxacin. | 16 | 2.6 | 5 | --- | ||
| Olnood, Chen G et al. Anim Nutr. (2015). 1(3):192-202 29767168 | PM | 2015.09 | Delivery routes for probiotics: Effects on broiler performance, intestinal morphology and gut microflora. | 14 | 1.9 | 2 | --- | ||
| Żbikowski, Artur et al. Animals (Basel). (2020). 10(9) 32887290 | PM | 2020.09 | Comparative Effects of Using New Multi-Strain Synbiotics on Chicken Growth Performance, Hematology, Serum Biochemistry and Immunity. | 0 | 0.0 | 0 | --- | ||
| Sun, Jing et al. Biomed Res Int. (2018). 2018:4343196 30410932 | PM | 2018.00 | Comparative Analysis of the Gut Microbial Composition and Meat Flavor of Two Chicken Breeds in Different Rearing Patterns. | 4 | 0.8 | 3 | --- | ||
| Yang, Xin et al. Poult Sci. (2019). 98(7):2858-2865 30715522 | PM | 2019.07 | Effects of encapsulated organic acids and essential oils on intestinal barrier, microbial count, and bacterial metabolites in broiler chickens. | 23 | 6.3 | 4 | --- | ||
| Rodjan, P et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(2):e931-e940 29250860 | PM | C | 2018.04 | Effect of organic acids or probiotics alone or in combination on growth performance, nutrient digestibility, enzyme activities, intestinal morphology and gut microflora in broiler chickens. | 12 | 2.4 | 4 | --- | |
| Connerton, Phillippa L et al. Microbiome. (2018). 6(1):88 29753324 | PM | 2018.05 | The effect of the timing of exposure to Campylobacter jejuni on the gut microbiome and inflammatory responses of broiler chickens. | 32 | 6.6 | 7 | --- | ||
| Sakaridis, Ioannis et al. Front Microbiol. (2018). 9:927 29872425 | PM | 2018.00 | Investigating the Association Between the Caecal Microbiomes of Broilers and Campylobacter Burden. | 15 | 2.9 | 5 | --- | ||
| Tarabees, Reda et al. Probiotics Antimicrob Proteins. (2019). 11(3):981-989 30187428 | PM | 2019.09 | Effects of Dietary Supplementation of Probiotic Mix and Prebiotic on Growth Performance, Cecal Microbiota Composition, and Protection Against Escherichia coli O78 in Broiler Chickens. | 11 | 3.1 | 2 | --- | ||
| Gonmei, Gaichamdinliu et al. Vet World. (2019). 12(8):1251-1255 31641304 | PM | 2019.08 | Studies on immune response to Newcastle disease virus in broiler chickens fed with Lactobacillus reuteri PIA16 isolated from the gut of indigenous chicken of Assam, India. | 4 | 1.1 | 0 | --- | ||
| Xu, Qi et al. PLoS One. (2017). 12(10):e0185590 28972993 | PM | 2017.00 | Comparative characterization of bacterial communities in geese fed all-grass or high-grain diets. | 9 | 1.4 | 4 | --- | ||
| Vineetha, P G et al. J Anim Physiol Anim Nutr (Berl). (2017). 101(5):e362-e370 28063239 | PM | C | 2017.10 | Effect of laboratory-isolated Lactobacillus plantarum LGFCP4 from gastrointestinal tract of guinea fowl on growth performance, carcass traits, intestinal histomorphometry and gastrointestinal microflora population in broiler chicken. | 5 | 0.9 | 2 | --- | |
| Zhou, H et al. Poult Sci. (2007). 86(12):2541-9 18029800 | PM | 2007.12 | Appropriate chicken sample size for identifying the composition of broiler intestinal microbiota affected by dietary antibiotics, using the polymerase chain reaction-denaturing gradient gel electrophoresis technique. | 15 | 1.0 | 8 | --- | ||
| Qureshi, Saim et al. Vet World. (2016). 9(3):269-75 27057110 | PM | 2016.03 | Histomorphological studies of broiler chicken fed diets supplemented with either raw or enzyme treated dandelion leaves and fenugreek seeds. | 3 | 0.4 | 1 | --- | ||
| Kim, Ji Eun et al. Res Vet Sci. (2015). 102:150-8 26412535 | PM | C | 2015.10 | Dietary Capsicum and Curcuma longa oleoresins increase intestinal microbiome and necrotic enteritis in three commercial broiler breeds. | 20 | 2.7 | 7 | --- | |
| Das, Quail et al. Front Vet Sci. (2020). 7:541 33091095 | PM | 2020.00 | Corrigendum: Gut Microbiota, Blood Metabolites, and Spleen Immunity in Broiler Chickens Fed Berry Pomaces and Phenolic-Enriched Extractives. | 1 | 0.3 | 1 | --- | ||
| Azcarate-Peril, M Andrea et al. Appl Environ Microbiol. (2018). 84(5) 29269490 | PM | 2018.03 | An Attenuated Salmonella enterica Serovar Typhimurium Strain and Galacto-Oligosaccharides Accelerate Clearance of Salmonella Infections in Poultry through Modifications to the Gut Microbiome. | 24 | 4.8 | 6 | --- | ||
| Hertogs, Karolien et al. Pathogens. (2021). 10(1) 33451094 | PM | 2021.01 | Contamination Sources and Transmission Routes for Campylobacter on (Mixed) Broiler Farms in Belgium, and Comparison of the Gut Microbiota of Flocks Colonized and Uncolonized with Campylobacter. | 0 | 0.0 | 0 | --- | ||
| Hankel, Julia et al. Pathogens. (2021). 10(8) 34451532 | PM | 2021.08 | Comparison of Chicken Cecal Microbiota after Metaphylactic Treatment or Following Administration of Feed Additives in a Broiler Farm with Enterococcal Spondylitis History. | 0 | 0.0 | 0 | --- | ||
| Kers, Jannigje G et al. Anim Microbiome. (2019). 1(1):10 33499936 | PM | 2019.08 | Take care of the environment: housing conditions affect the interplay of nutritional interventions and intestinal microbiota in broiler chickens. | 7 | 2.0 | 2 | --- | ||
| Qi, Zhao et al. 3 Biotech. (2019). 9(8):316 31406638 | PM | 2019.08 | Comparative metagenomic sequencing analysis of cecum microbiotal diversity and function in broilers and layers. | 9 | 2.5 | 2 | --- | ||
| Benzertiha, Abdelbasset et al. Animals (Basel). (2019). 9(12) 31842397 | PM | 2019.12 | Tenebrio molitor and Zophobas morio Full-Fat Meals in Broiler Chicken Diets: Effects on Nutrients Digestibility, Digestive Enzyme Activities, and Cecal Microbiome. | 8 | 2.5 | 1 | --- | ||
| Volf, Jiri et al. Microorganisms. (2021). 9(7) 34361916 | PM | 2021.07 | Eggshell and Feed Microbiota Do Not Represent Major Sources of Gut Anaerobes for Chickens in Commercial Production. | 0 | 0.0 | 0 | --- | ||
| Olnood, Chen G et al. Anim Nutr. (2015). 1(3):203-212 29767137 | PM | 2015.09 | Use of Lactobacillus johnsonii in broilers challenged with Salmonella sofia. | 10 | 1.3 | 3 | --- | ||
| Johansen, Charlotte H et al. Acta Vet Scand. (2007). 49:30 17963485 | PM | C | 2007.10 | Impact of salinomycin on the intestinal microflora of broiler chickens. | 7 | 0.5 | 3 | --- | |
| Nooreh, Zahra et al. Poult Sci. (2021). 100(3):100942 33518316 | PM | 2021.03 | Effects of a dietary direct-fed microbial and Ferulago angulata extract on growth performance, intestinal microflora, and immune function of broiler chickens infected with Campylobacter jejuni. | 0 | 0.0 | 0 | --- | ||
| Ji, J et al. Poult Sci. (2019). 98(9):4084-4093 31330021 | PM | 2019.09 | Association of host genetics with intestinal microbial relevant to body weight in a chicken F2 resource population. | 6 | 1.7 | 1 | --- | ||
| Ramiah, Suriya Kumari et al. Asian-Australas J Anim Sci. (2014). 27(3):375-82 25049964 | PM | 2014.03 | Effects of two herbal extracts and virginiamycin supplementation on growth performance, intestinal microflora population and Fatty Acid composition in broiler chickens. | 4 | 0.4 | 0 | --- | ||
| Zhang, Jian-Mei et al. Front Microbiol. (2019). 10:2176 31616396 | PM | 2019.00 | SCFAs-Induced GLP-1 Secretion Links the Regulation of Gut Microbiome on Hepatic Lipogenesis in Chickens. | 13 | 3.1 | 5 | --- | ||
| Gaudioso, Giulia et al. Int J Mol Sci. (2021). 22(11) 34064267 | PM | 2021.05 | Processed Animal Proteins from Insect and Poultry By-Products in a Fish Meal-Free Diet for Rainbow Trout: Impact on Intestinal Microbiota and Inflammatory Markers. | 1 | 0.5 | 0 | --- | ||
| Tellez, Guillermo et al. Front Genet. (2014). 5:339 25309584 | PM | 2014.00 | Utilization of rye as energy source affects bacterial translocation, intestinal viscosity, microbiota composition, and bone mineralization in broiler chickens. | 40 | 4.3 | 3 | --- | ||
| Hou, Tao et al. Nutrients. (2017). 9(7) 28754012 | PM | 2017.07 | Intra-Amniotic Administration (Gallus gallus) of Cicer arietinum and Lens culinaris Prebiotics Extracts and Duck Egg White Peptides Affects Calcium Status and Intestinal Functionality. | 8 | 1.4 | 4 | --- | ||
| Alcaraz, Luis David et al. PeerJ. (2016). 4:e2837 28028487 | PM | 2016.00 | Exploring the cockatiel (Nymphicus hollandicus) fecal microbiome, bacterial inhabitants of a worldwide pet. | 7 | 1.0 | 0 | --- | ||
| Lambrecht, Ellen et al. Int J Food Microbiol. (2019). 311:108357 31536878 | PM | 2019.12 | Commensal E. coli rapidly transfer antibiotic resistance genes to human intestinal microbiota in the Mucosal Simulator of the Human Intestinal Microbial Ecosystem (M-SHIME). | 8 | 2.5 | 0 | --- | ||
| Gao, Guangliang et al. Sci Rep. (2016). 6:32961 27608918 | PM | 2016.09 | Genome and metagenome analyses reveal adaptive evolution of the host and interaction with the gut microbiota in the goose. | 12 | 1.8 | 2 | --- | ||
| Wang, Jian et al. Food Funct. (2021). 12(9):4092-4104 33977979 | PM | C | 2021.05 | Baicalin ameliorates Mycoplasma gallisepticum-induced inflammatory injury in the chicken lung through regulating the intestinal microbiota and phenylalanine metabolism. | 3 | 1.6 | 0 | --- | |
| Vase-Khavari, Keyvan et al. Trop Anim Health Prod. (2019). 51(1):33-42 30047009 | PM | C | 2019.01 | The effect of three tropical medicinal plants and superzist probiotic on growth performance, carcass characteristics, blood constitutes, immune response, and gut microflora of broiler. | 4 | 1.0 | 0 | --- | |
| Li, Y et al. J Appl Microbiol. (2016). 120(1):195-204 26480894 | PM | 2016.01 | Effect of Bacillus subtilis CGMCC 1.1086 on the growth performance and intestinal microbiota of broilers. | 35 | 4.9 | 11 | --- | ||
| Pang, Y et al. Poult Sci. (2009). 88(3):586-92 19211529 | PM | 2009.03 | The influence of copper concentration and source on ileal microbiota. | 14 | 1.0 | 3 | --- | ||
| Zhao, Yan et al. Poult Sci. (2019). 98(10):4530-4538 31111923 | PM | 2019.10 | Protective role of dryland rearing on netting floors against mortality through gut microbiota-associated immune performance in Shaoxing ducks. | 2 | 0.6 | 0 | --- | ||
| Askelson, T E et al. Poult Sci. (2018). 97(1):54-63 29077888 | PM | 2018.01 | Effects of direct-fed microorganisms and enzyme blend co-administration on intestinal bacteria in broilers fed diets with or without antibiotics. | 3 | 0.6 | 0 | --- | ||
| Li, Aoyun et al. Ecotoxicol Environ Saf. (2021). 227:112871 34649138 | PM | 2021.12 | Environmental hexavalent chromium exposure induces gut microbial dysbiosis in chickens. | 0 | 0.0 | 0 | --- | ||
| Saint-Cyr, Manuel Jimmy et al. Int J Food Microbiol. (2017). 247:9-17 27432696 | PM | 2017.04 | Use of the potential probiotic strain Lactobacillus salivarius SMXD51 to control Campylobacter jejuni in broilers. | 28 | 4.7 | 10 | --- | ||
| Goossens, Evy et al. Arch Microbiol. (2021). 203(5):2119-2127 33606040 | PM | 2021.07 | Exploring the faecal microbiome of the Eurasian nuthatch (Sitta europaea). | 0 | 0.0 | 0 | --- | ||
| Kollarcikova, Miloslava et al. Poult Sci. (2019). 98(6):2347-2353 30624758 | PM | 2019.06 | Use of 16S rRNA gene sequencing for prediction of new opportunistic pathogens in chicken ileal and cecal microbiota. | 13 | 3.5 | 4 | --- | ||
| Xu, Shuai et al. Sci Rep. (2018). 8(1):1744 29379124 | PM | 2018.01 | Bacillus licheniformis normalize the ileum microbiota of chickens infected with necrotic enteritis. | 33 | 6.4 | 8 | --- | ||
| Wang, Wen et al. J Basic Microbiol. (2016). 56(11):1299-1307 27365218 | PM | 2016.11 | Distinctive gut microbial community structure in both the wild and farmed Swan goose (Anser cygnoides). | 14 | 2.2 | 3 | --- | ||
| Day, J Michael et al. PLoS One. (2015). 10(1):e0117210 25635690 | PM | 2015.00 | Comparative analysis of the intestinal bacterial and RNA viral communities from sentinel birds placed on selected broiler chicken farms. | 17 | 2.1 | 1 | --- | ||
| Han, Zifeng et al. Gut Pathog. (2016). 8:56 27843492 | PM | 2016.00 | Differences in host breed and diet influence colonization by Campylobacter jejuni and induction of local immune responses in chicken. | 20 | 2.8 | 8 | --- | ||
| Lu, C C et al. Poult Sci. (2021). 100(7):101208 34102480 | PM | 2021.07 | Effect of different types of sugar on gut physiology and microbiota in overfed goose. | 0 | 0.0 | 0 | --- | ||
| Wu, Yuanyuan et al. Sci Rep. (2019). 9(1):10256 31311959 | PM | 2019.07 | Pretreatment with probiotic Enterococcus faecium NCIMB 11181 ameliorates necrotic enteritis-induced intestinal barrier injury in broiler chickens. | 13 | 3.5 | 2 | --- | ||
| Qing, Xiaodan et al. AMB Express. (2017). 7(1):139 28655217 | PM | 2017.12 | Preventing subclinical necrotic enteritis through Lactobacillus johnsonii BS15 by ameliorating lipid metabolism and intestinal microflora in broiler chickens. | 16 | 3.0 | 5 | --- | ||
| Luo, Qihui et al. Poult Sci. (2021). 100(4):101021 33677399 | PM | 2021.04 | An altered gut microbiota in duck-origin parvovirus infection on cherry valley ducklings is associated with mucosal barrier dysfunction. | 0 | 0.0 | 0 | --- | ||
| Whelan, Rose A et al. Poult Sci. (2019). 98(9):3450-3463 30452717 | PM | 2019.09 | The impact of Bacillus subtilis DSM 32315 on the pathology, performance, and intestinal microbiome of broiler chickens in a necrotic enteritis challenge. | 33 | 9.4 | 8 | --- | ||
| Bilal, Muhammad et al. Microorganisms. (2021). 9(9) 34576794 | PM | 2021.09 | Bacillus pumilus and Bacillus subtilis Promote Early Maturation of Cecal Microbiota in Broiler Chickens. | 0 | 0.0 | 0 | --- | ||
| Tun, Hein Min et al. J Microbiol Methods. (2012). 88(3):369-76 22265636 | PM | 2012.03 | Gene-centric metagenomics analysis of feline intestinal microbiome using 454 junior pyrosequencing. | 38 | 3.5 | 1 | --- | ||
| Li, Li et al. PLoS One. (2018). 13(2):e0192066 29390031 | PM | 2018.00 | Infectious bursal disease virus infection leads to changes in the gut associated-lymphoid tissue and the microbiota composition. | 9 | 1.7 | 1 | --- | ||
| Kumar, Sanjay et al. PLoS One. (2018). 13(2):e0192450 29444134 | PM | 2018.00 | Effect of antibiotic withdrawal in feed on chicken gut microbial dynamics, immunity, growth performance and prevalence of foodborne pathogens. | 36 | 6.9 | 13 | --- | ||
| Abudabos, Alaeldein M et al. Appl Microbiol Biotechnol. (2017). 101(18):7017-7026 28770304 | PM | 2017.09 | Effects of concentration of corn distillers dried grains with solubles and enzyme supplementation on cecal microbiota and performance in broiler chickens. | 7 | 1.3 | 2 | --- | ||
| Zheng, Mingli et al. Poult Sci. (2021). 100(2):1049-1058 33518063 | PM | 2021.02 | Effects of grazing mixed-grass pastures on growth performance, immune responses, and intestinal microbiota in free-range Beijing-you chickens. | 0 | 0.0 | 0 | --- | ||
| Zhou, Xueyan et al. Microbiologyopen. (2016). 5(5):753-762 27139888 | PM | 2016.10 | Cecal microbiota of Tibetan Chickens from five geographic regions were determined by 16S rRNA sequencing. | 30 | 4.7 | 9 | --- | ||
| Fisinin, V I et al. Vopr Pitan. (2017). 86(6):114-124 30592861 | PM | 2017.00 | [Antibiotic-free poultry production based on innovative nutritional programs with the involvement of probiotics]. | 0 | 0.0 | 0 | --- | ||
| Dabbou, Sihem et al. Animals (Basel). (2021). 11(6) 34205603 | PM | 2021.06 | Modified Black Soldier Fly Larva Fat in Broiler Diet: Effects on Performance, Carcass Traits, Blood Parameters, Histomorphological Features and Gut Microbiota. | 0 | 0.0 | 0 | --- | ||
| Macdonald, Sarah E et al. PLoS One. (2017). 12(9):e0184890 28934262 | PM | 2017.00 | Effects of Eimeria tenella infection on chicken caecal microbiome diversity, exploring variation associated with severity of pathology. | 32 | 5.1 | 12 | --- | ||
| Kim, MinJu et al. Anim Biosci. (2021). 34(8):1365-1374 33561925 | PM | 2021.08 | Synergistic effect of exogenous multi-enzyme and phytase on growth performance, nutrients digestibility, blood metabolites, intestinal microflora and morphology in broilers fed corn-wheat-soybean meal diets. | 0 | 0.0 | 0 | --- | ||
| Mignon-Grasteau, Sandrine et al. PLoS One. (2015). 10(8):e0135488 26267269 | PM | 2015.00 | Impact of Selection for Digestive Efficiency on Microbiota Composition in the Chicken. | 20 | 2.4 | 5 | --- | ||
| Liu, Yanli et al. Anim Sci J. (2017). 88(9):1414-1424 28317217 | PM | 2017.09 | Effects of a protected inclusion of organic acids and essential oils as antibiotic growth promoter alternative on growth performance, intestinal morphology and gut microflora in broilers. | 19 | 3.5 | 2 | --- | ||
| Dunislawska, A et al. J Anim Sci Biotechnol. (2021). 12(1):73 34229755 | PM | 2021.07 | Interaction between early in ovo stimulation of the gut microbiota and chicken host - splenic changes in gene expression and methylation. | 3 | 1.8 | 0 | --- | ||
| Aguirre, Marisol et al. Vet Res. (2019). 50(1):15 30795808 | PM | 2019.02 | In-feed resin acids reduce matrix metalloproteinase activity in the ileal mucosa of healthy broilers without inducing major effects on the gut microbiota. | 9 | 2.2 | 0 | --- | ||
| Xu, Xiao Hui et al. Sci Rep. (2018). 8(1):4413 29535326 | PM | 2018.03 | Effects of Phytase Transgenic Maize on the Physiological and Biochemical Responses and the Gut Microflora Functional Diversity of Ostrinia furnacalis. | 0 | 0.0 | 0 | --- | ||
| Tillman, Glenn E et al. FEMS Microbiol Ecol. (2011). 77(2):395-403 21517917 | PM | 2011.08 | Chicken intestine microbiota following the administration of lupulone, a hop-based antimicrobial. | 12 | 1.0 | 7 | --- | ||
| Yang, Y et al. Br Poult Sci. (2008). 49(2):186-94 18409093 | PM | 2008.03 | Effects of mannanoligosaccharide in broiler chicken diets on growth performance, energy utilisation, nutrient digestibility and intestinal microflora. | 14 | 0.9 | 2 | --- | ||
| Heak, Chhaiden et al. Asian-Australas J Anim Sci. (2018). 31(11):1781-1794 29879823 | PM | 2018.11 | Effect of direct-fed microbials on culturable gut microbiotas in broiler chickens: a meta-analysis of controlled trials. | 2 | 0.5 | 2 | --- | ||
| Shang, Yue et al. Poult Sci. (2018). 97(10):3622-3634 30016495 | PM | 2018.10 | Effect of Dietary Fructooligosaccharide (FOS) Supplementation on Ileal Microbiota in Broiler Chickens. | 7 | 1.6 | 4 | --- | ||
| Adhikari, Bishnu et al. Front Vet Sci. (2019). 6:282 31508436 | PM | 2019.00 | Evaluation of the Antimicrobial and Anti-inflammatory Properties of Bacillus-DFM (Norum™) in Broiler Chickens Infected With Salmonella Enteritidis. | 9 | 2.1 | 2 | --- | ||
| Nagpal, Ravinder et al. Front Microbiol. (2017). 8:1388 28785253 | PM | 2017.00 | Ontogenesis of the Gut Microbiota Composition in Healthy, Full-Term, Vaginally Born and Breast-Fed Infants over the First 3 Years of Life: A Quantitative Bird's-Eye View. | 30 | 4.8 | 0 | --- | ||
| Such, Nikoletta et al. Vet Sci. (2021). 8(9) 34564581 | PM | 2021.09 | Relative Effects of Dietary Administration of a Competitive Exclusion Culture and a Synbiotic Product, Age and Sampling Site on Intestinal Microbiota Maturation in Broiler Chickens. | 0 | 0.0 | 0 | --- | ||
| Lanning, D et al. J Immunol. (2000). 165(4):2012-9 10925284 | PM | 2000.08 | Intestinal microflora and diversification of the rabbit antibody repertoire. | 24 | 1.1 | 0 | --- | ||
| Adorján, András et al. BMC Vet Res. (2021). 17(1):263 34353312 | PM | 2021.08 | First isolation of atypical enteropathogenic Escherichia coli from geese (Anser anser domestica) and first description of atypical EPEC from turkeys and pigeons in Hungary. | 0 | 0.0 | 0 | --- | ||
| Cui, Ning et al. Front Microbiol. (2018). 9:900 29867811 | PM | 2018.00 | Newcastle Disease Virus Infection Interferes With the Formation of Intestinal Microflora in Newly Hatched Specific-Pathogen-Free Chicks. | 6 | 1.1 | 1 | --- | ||
| Thibodeau, Alexandre et al. Front Microbiol. (2017). 8:451 28367146 | PM | 2017.00 | Lack of Evidence That Selenium-Yeast Improves Chicken Health and Modulates the Caecal Microbiota in the Context of Colonization by Campylobacter jejuni. | 10 | 1.6 | 1 | --- | ||
| Siegerstetter, Sina-Catherine et al. Front Microbiol. (2018). 9:2698 30510543 | PM | 2018.00 | Feed Restriction Modulates the Fecal Microbiota Composition, Nutrient Retention, and Feed Efficiency in Chickens Divergent in Residual Feed Intake. | 10 | 1.9 | 4 | --- | ||
| Miguela-Villoldo, Pedro et al. Antibiotics (Basel). (2021). 10(6) 34198813 | PM | 2021.06 | Colistin Selection of the Mcr-1 Gene in Broiler Chicken Intestinal Microbiota. | 0 | 0.0 | 0 | --- | ||
| Park, Jae-Hong et al. J Poult Sci. (2017). 54(3):236-241 32908431 | PM | 2017.07 | Effect of Dietary Bacillus Subtilis C14 and RX7 Strains on Growth Performance, Blood Parameter, and Intestinal Microbiota in Broiler Chickens Challenged with Salmonella Gallinarum. | 0 | 0.0 | 0 | --- | ||
| Zhang, Tao et al. Metabolites. (2021). 11(8) 34436428 | PM | 2021.07 | Antibiotic-Induced Dysbiosis of Microbiota Promotes Chicken Lipogenesis by Altering Metabolomics in the Cecum. | 1 | 0.6 | 0 | --- | ||
| Kumar, Pawan et al. J Sci Food Agric. (2017). 97(11):3742-3751 28120474 | PM | 2017.08 | Effect of black cumin seeds on growth performance, nutrient utilization, immunity, gut health and nitrogen excretion in broiler chickens. | 7 | 1.3 | 0 | --- | ||
| Tai, Hsueh-Ming et al. PLoS One. (2021). 16(6):e0253661 34166442 | PM | 2021.00 | Scale-up production of and dietary supplementation with the recombinant antimicrobial peptide tilapia piscidin 4 to improve growth performance in Gallus gallus domesticus. | 0 | 0.0 | 0 | --- | ||
| Hosseinzadeh, Hesam et al. ScientificWorldJournal. (2014). 2014:628979 25614892 | PM | 2014.00 | Effects of different levels of coriander (Coriandrum sativum) seed powder and extract on serum biochemical parameters, microbiota, and immunity in broiler chicks. | 5 | 0.5 | 0 | --- | ||
| Feng, Xin et al. Poult Sci. (2021). 100(3):100907 33518348 | PM | C | 2021.03 | Effects of monobutyrin supplementation on egg production, biochemical indexes, and gut microbiota of broiler breeders. | 1 | 0.5 | 0 | --- | |
| Amit-Romach, E et al. Poult Sci. (2004). 83(7):1093-8 15285498 | PM | 2004.07 | Microflora ecology of the chicken intestine using 16S ribosomal DNA primers. | 57 | 3.1 | 20 | --- | ||
| Feng, Xin et al. Poult Sci. (2021). 100(9):101386 34358954 | PM | C | 2021.09 | Research Note: Effects of glycerol monolaurate supplementation on egg production, biochemical indices, and gut microbiota of broiler breeders at the late stage of production. | 0 | 0.0 | 0 | --- | |
| Li, Haifang et al. Poult Sci. (2021). 100(1):235-245 33357686 | PM | 2021.01 | Propionate inhibits fat deposition via affecting feed intake and modulating gut microbiota in broilers. | 1 | 0.5 | 0 | --- | ||
| Hadziabdic, Sead et al. Antimicrob Agents Chemother. (2018). 62(4) 29437622 | PM | 2018.04 | In Vivo Transfer and Microevolution of Avian Native IncA/C2blaNDM-1-Carrying Plasmid pRH-1238 during a Broiler Chicken Infection Study. | 7 | 1.4 | 0 | --- | ||
| Vadalasetty, Krishna Prasad et al. BMC Vet Res. (2018). 14(1):1 29291752 | PM | 2018.01 | Influence of silver nanoparticles on growth and health of broiler chickens after infection with Campylobacter jejuni. | 33 | 6.4 | 2 | --- | ||
| Shokraneh, Meisam et al. Vet World. (2016). 9(11):1197-1203 27956768 | PM | 2016.11 | Influence of drinking water containing Aloe vera (Aloe barbadensis Miller) gel on growth performance, intestinal microflora, and humoral immune responses of broilers. | 3 | 0.5 | 0 | --- | ||
| Burkholder, K M et al. Poult Sci. (2008). 87(9):1734-41 18753440 | PM | 2008.09 | Influence of stressors on normal intestinal microbiota, intestinal morphology, and susceptibility to Salmonella enteritidis colonization in broilers. | 61 | 4.2 | 12 | --- | ||
| Adhikari, Bishnu; Kwon, Young M Front Microbiol. (2017). 8:1389 28798730 | PM | 2017.00 | Characterization of the Culturable Subpopulations of Lactobacillus in the Chicken Intestinal Tract as a Resource for Probiotic Development. | 14 | 2.2 | 4 | --- | ||
| Cross, D E et al. Br Poult Sci. (2007). 48(4):496-506 17701503 | PM | 2007.08 | The effect of herbs and their associated essential oils on performance, dietary digestibility and gut microflora in chickens from 7 to 28 days of age. | 57 | 3.7 | 7 | --- | ||
| Schreuder, Janneke et al. Anim Microbiome. (2020). 2(1):28 33499947 | PM | 2020.08 | An observational field study of the cloacal microbiota in adult laying hens with and without access to an outdoor range. | 3 | 1.2 | 2 | --- | ||
| Barrow, Paul Andrew et al. Avian Pathol. (2015). 44(5):401-7 26443064 | PM | 2015.10 | The contribution of aerobic and anaerobic respiration to intestinal colonization and virulence for Salmonella typhimurium in the chicken. | 3 | 0.4 | 0 | --- | ||
| Pandi, J et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(1):e216-e224 28603839 | PM | C | 2018.02 | Evaluation of the effects of sweet potato (Ipomoea batatas (L.) Lam) in broiler diets. | 1 | 0.2 | 0 | --- | |
| Alzueta, C et al. Br Poult Sci. (2003). 44(1):67-74 12737228 | PM | 2003.03 | Effect of whole and demucilaged linseed in broiler chicken diets on digesta viscosity, nutrient utilisation and intestinal microflora. | 12 | 0.6 | 0 | --- | ||
| He, Yang et al. Microb Cell Fact. (2021). 20(1):122 34182992 | PM | 2021.06 | Enterococcus faecium PNC01 isolated from the intestinal mucosa of chicken as an alternative for antibiotics to reduce feed conversion rate in broiler chickens. | 1 | 0.6 | 0 | --- | ||
| Pissavin, C et al. Poult Sci. (2012). 91(9):2294-304 22912466 | PM | 2012.09 | Capillary electrophoresis single-strand conformation polymorphism for the monitoring of gastrointestinal microbiota of chicken flocks. | 3 | 0.3 | 0 | --- | ||
| Torok, V A et al. Poult Sci. (2009). 88(12):2474-81 19903943 | PM | C | 2009.12 | Influence of different litter materials on cecal microbiota colonization in broiler chickens. | 34 | 2.6 | 11 | --- | |
| Meijerink, Nathalie et al. Vet Sci. (2021). 8(6) 34204778 | PM | 2021.06 | Glucose Oligosaccharide and Long-Chain Glucomannan Feed Additives Induce Enhanced Activation of Intraepithelial NK Cells and Relative Abundance of Commensal Lactic Acid Bacteria in Broiler Chickens. | 1 | 0.6 | 0 | --- | ||
| Gaboriaud, Pauline et al. Front Cell Infect Microbiol. (2020). 10:632556 33614532 | PM | 2020.00 | The Absence of Gut Microbiota Alters the Development of the Apicomplexan Parasite Eimeria tenella. | 4 | 1.2 | 0 | --- | ||
| Fowler, J et al. J Anim Physiol Anim Nutr (Berl). (2015). 99(5):932-7 25939376 | PM | C | 2015.10 | Yeast cell wall and live yeast products and their combination in broiler diets formulated with weekly ingredient variations. | 5 | 0.7 | 1 | --- | |
| Chen, W et al. J Anim Sci. (2013). 91(2):978-85 23307840 | PM | C | 2013.02 | Effects of Bacillus subtilis var. natto and Saccharomyces cerevisiae fermented liquid feed on growth performance, relative organ weight, intestinal microflora, and organ antioxidant status in Landes geese. | 9 | 0.9 | 1 | --- | |
| Dunislawska, Aleksandra et al. Genes (Basel). (2020). 11(5) 32455682 | PM | 2020.05 | Hepatic DNA Methylation in Response to Early Stimulation of Microbiota with Lactobacillus Synbiotics in Broiler Chickens. | 8 | 2.8 | 3 | --- | ||
| Li, Rong et al. J Hazard Mater. (2021). 406:124440 33302188 | PM | 2021.03 | Feed-additive of bioengineering strain with surface-displayed laccase degrades sulfadiazine in broiler manure and maintains intestinal flora structure. | 0 | 0.0 | 0 | --- | ||
| Kačániová, Miroslava et al. Res Vet Sci. (2013). 95(1):34-7 23548478 | PM | 2013.08 | The effects of bee pollen extracts on the broiler chicken's gastrointestinal microflora. | 1 | 0.1 | 0 | --- | ||
| Ma, Weiqing et al. Front Vet Sci. (2021). 8:737160 34552978 | PM | 2021.00 | Persistent Purine Metabolic Abnormality Induces the Aggravation of Visceral Inflammation and Intestinal Microbiota Dysbiosis in Magang Goose. | 0 | 0.0 | 0 | --- | ||
| Fajardo, Paula et al. ScientificWorldJournal. (2012). 2012:562635 22666137 | PM | 2012.00 | Effects of feeding of two potentially probiotic preparations from lactic acid bacteria on the performance and faecal microflora of broiler chickens. | 8 | 0.7 | 1 | --- | ||
| Montoro-Dasi, Laura et al. Animals (Basel). (2021). 11(3) 33652795 | PM | 2021.02 | Assessment of Microbiota Modulation in Poultry to Combat Infectious Diseases. | 0 | 0.0 | 0 | --- | ||
| Barnes, E M J Appl Bacteriol. (1979). 46(3):407-19 383674 | PM | R | 1979.06 | The intestinal microflora of poultry and game birds during life and after storage. Address of the president of the Society for Applied Bacteriology delivered at a meeting of the society on 10 January 1979. | 28 | 0.6 | 8 | --- | |
| Teng, Po-Yun et al. J Poult Sci. (2017). 54(2):134-141 32908418 | PM | 2017.04 | Administration of Bacillus Amyloliquefaciens and Saccharomyces Cerevisiae as Direct-Fed Microbials Improves Intestinal Microflora and Morphology in Broiler Chickens. | 3 | 0.5 | 0 | --- | ||
| van der Wielen, P W J J et al. Microb Ecol. (2002). 44(3):286-93 12219265 | PM | 2002.10 | Spatial and temporal variation of the intestinal bacterial community in commercially raised broiler chickens during growth. | 77 | 3.8 | 32 | --- | ||
| Lu, J et al. Animal. (2008). 2(5):669-76 22443592 | PM | 2008.05 | Effects of feed additives on the development on the ileal bacterial community of the broiler chicken. | 14 | 0.9 | 5 | --- | ||
| Wise, M G; Siragusa, G R J Appl Microbiol. (2007). 102(4):1138-49 17381758 | PM | 2007.04 | Quantitative analysis of the intestinal bacterial community in one- to three-week-old commercially reared broiler chickens fed conventional or antibiotic-free vegetable-based diets. | 80 | 5.0 | 25 | --- | ||
| Rashid, Zubia et al. Mol Biol Rep. (2021). 48(11):7203-7214 34559376 | PM | 2021.11 | Comparative analysis of chicken cecal microbial diversity and taxonomic composition in response to dietary variation using 16S rRNA amplicon sequencing. | 0 | 0.0 | 0 | --- | ||
| Mountzouris, K C et al. Poult Sci. (2015). 94(10):2445-55 26286998 | PM | 2015.10 | Evaluation of yeast dietary supplementation in broilers challenged or not with Salmonella on growth performance, cecal microbiota composition and Salmonella in ceca, cloacae and carcass skin. | 11 | 1.5 | 5 | --- | ||
| Sofka, Dmitri et al. Berl Munch Tierarztl Wochenschr. 128(3-4):104-10 25876269 | PM | 2015.00 | Changes within the intestinal flora of broilers by colonisation with Campylobacter jejuni. | 18 | 2.2 | 8 | --- | ||
| Kupryś-Caruk, Marta et al. J Vet Res. (2018). 62(1):57-64 29978128 | PM | 2018.03 | Efficacy and Safety Assessment of Microbiological Feed Additive for Chicken Broilers in Tolerance Studies. | 2 | 0.4 | 0 | --- | ||
| Angelakis, Emmanouil; Raoult, Didier PLoS One. (2010). 5(5):e10463 20454557 | PM | 2010.05 | The increase of Lactobacillus species in the gut flora of newborn broiler chicks and ducks is associated with weight gain. | 44 | 3.4 | 18 | --- | ||
| Parker, J et al. Poult Sci. (2007). 86(4):643-53 17369534 | PM | 2007.04 | Enzymes as feed additive to aid in responses against Eimeria species in coccidia-vaccinated broilers fed corn-soybean meal diets with different protein levels. | 11 | 0.7 | 2 | --- | ||
| Calenge, F et al. Avian Pathol. (2014). 43(1):78-81 24320598 | PM | 2014.00 | Broiler lines divergently selected for digestive efficiency also differ in their susceptibility to colibacillosis. | 3 | 0.3 | 0 | --- | ||
| Patuzzi, Ilaria et al. Microorganisms. (2021). 9(2) 33499060 | PM | 2021.01 | The Interplay between Campylobacter and the Caecal Microbial Community of Commercial Broiler Chickens over Time. | 1 | 0.5 | 0 | --- | ||
| Kleessen, Brigitta et al. J Food Prot. (2003). 66(11):2171-5 14627303 | PM | 2003.11 | Jerusalem artichokes stimulate growth of broiler chickens and protect them against endotoxins and potential cecal pathogens. | 4 | 0.2 | 1 | --- | ||
34280643 | PM | .-- | 2 | 0.0 | 0 | --- | |||
| Scherz, Gesine et al. Berl Munch Tierarztl Wochenschr. 127(11-12):478-85 25872257 | PM | 2014.00 | Effects of carry-over of fluoroquinolones on the susceptibility of commensal Escherichia coli in the intestinal microbiota of poultry. | 7 | 0.8 | 1 | --- | ||
| Glendinning, Laura et al. Anim Microbiome. (2019). 1(1):17 33499941 | PM | 2019.11 | Development of the duodenal, ileal, jejunal and caecal microbiota in chickens. | 8 | 2.4 | 6 | --- | ||
| Glombowsky, Patrícia et al. Microb Pathog. (2020). 149:104570 33075519 | PM | 2020.12 | Experimental infection with Escherichia coli in broilers: Impacts of the disease and benefits of preventive consumption of a stimulator of homeopathic immunity. | 3 | 1.3 | 0 | --- | ||
| Venardou, B et al. Poult Sci. (2021). 100(7):101179 34098504 | PM | C | 2021.07 | Effects of dietary supplementation with a laminarin-rich extract on the growth performance and gastrointestinal health in broilers. | 1 | 0.6 | 0 | --- | |
| Ali, Akhtar et al. Animals (Basel). (2021). 11(7) 34359154 | PM | R | 2021.07 | Cinnamon: A Natural Feed Additive for Poultry Health and Production-A Review. | 2 | 1.2 | 0 | --- | |
| Muramatsu, T et al. Br J Nutr. (1994). 71(5):709-17 8054326 | PM | 1994.05 | Modification of energy metabolism by the presence of the gut microflora in the chicken. | 3 | 0.1 | 1 | --- | ||
| Lacey, Jake A et al. Vet Microbiol. (2018). 227:119-126 30473341 | PM | 2018.12 | Clostridium perfringens-mediated necrotic enteritis is not influenced by the pre-existing microbiota but is promoted by large changes in the post-challenge microbiota. | 6 | 1.4 | 1 | --- | ||
| Pineda, Lane et al. Arch Anim Nutr. (2012). 66(5):416-29 22889095 | PM | C | 2012.10 | Effect of silver nanoparticles on growth performance, metabolism and microbial profile of broiler chickens. | 17 | 1.6 | 1 | --- | |
| Mikkelsen, L L et al. Br Poult Sci. (2009). 50(1):66-75 19234931 | PM | 2009.01 | Effect of potassium diformate on growth performance and gut microbiota in broiler chickens challenged with necrotic enteritis. | 5 | 0.4 | 0 | --- | ||
| Han, Zifeng et al. Dev Comp Immunol. (2016). 62:58-71 27131855 | PM | 2016.09 | The influence of age on Campylobacter jejuni infection in chicken. | 10 | 1.5 | 4 | --- | ||
| Nothaft, H et al. Appl Environ Microbiol. (2017). 83(23) 28939610 | PM | 2017.12 | Coadministration of the Campylobacter jejuni N-Glycan-Based Vaccine with Probiotics Improves Vaccine Performance in Broiler Chickens. | 16 | 3.0 | 1 | --- | ||
| Schreuder, Janneke et al. Front Microbiol. (2020). 11:626713 33584593 | PM | 2020.00 | Temporal Dynamics of Cloacal Microbiota in Adult Laying Chickens With and Without Access to an Outdoor Range. | 0 | 0.0 | 0 | --- | ||
| Neumann, A P; Suen, G J Appl Microbiol. (2015). 119(6):1515-26 26425940 | PM | 2015.12 | Differences in major bacterial populations in the intestines of mature broilers after feeding virginiamycin or bacitracin methylene disalicylate. | 19 | 2.6 | 9 | --- | ||
| Kelly, Carmel et al. Foodborne Pathog Dis. (2017). 14(6):341-349 28398869 | PM | 2017.06 | The In Vitro and In Vivo Effect of Carvacrol in Preventing Campylobacter Infection, Colonization and in Improving Productivity of Chicken Broilers. | 19 | 3.3 | 0 | --- | ||
| Li, Li et al. Gut Pathog. (2018). 10:13 29610580 | PM | 2018.00 | Infectious bursal disease virus inoculation infection modifies Campylobacter jejuni-host interaction in broilers. | 5 | 1.0 | 0 | --- | ||
| Asakura, Hiroshi et al. Front Vet Sci. (2021). 8:675570 34222400 | PM | 2021.00 | Long-Term Grow-Out Affects Campylobacter jejuni Colonization Fitness in Coincidence With Altered Microbiota and Lipid Composition in the Cecum of Laying Hens. | 0 | 0.0 | 0 | --- | ||
| Wang, Jun et al. PeerJ. (2018). 6:e4390 29492337 | PM | 2018.00 | 16S rRNA gene sequencing reveals effects of photoperiod on cecal microbiota of broiler roosters. | 10 | 1.9 | 3 | --- | ||
| Engberg, Ricarda Margarete et al. Avian Pathol. (2012). 41(4):369-76 22834551 | PM | 2012.00 | The effect of Artemisia annua on broiler performance, on intestinal microbiota and on the course of a Clostridium perfringens infection applying a necrotic enteritis disease model. | 9 | 0.8 | 0 | --- | ||
| Wu, Shu-Biao et al. Vet Microbiol. (2014). 169(3-4):188-97 24522272 | PM | 2014.03 | Two necrotic enteritis predisposing factors, dietary fishmeal and Eimeria infection, induce large changes in the caecal microbiota of broiler chickens. | 46 | 5.1 | 15 | --- | ||
| Jiang, Sha et al. Animals (Basel). (2021). 11(6) 34064126 | PM | R | 2021.05 | Bacillus subtilis-Based Probiotic Improves Skeletal Health and Immunity in Broiler Chickens Exposed to Heat Stress. | 0 | 0.0 | 0 | --- | |
| Choct, M; Annison, G Br Poult Sci. (1992). 33(4):821-34 1393677 | PM | 1992.09 | Anti-nutritive effect of wheat pentosans in broiler chickens: roles of viscosity and gut microflora. | 37 | 1.2 | 6 | --- | ||
| Blajman, Jesica E et al. Rev Argent Microbiol. 47(4):360-7 26614253 | PM | 2015.00 | [Probiotics in broilers' rearing: A strategy for intensive production models]. | 3 | 0.4 | 0 | --- | ||
| Liu, Tao et al. J Sci Food Agric. (2021) 34622457 | PM | 2021.10 | Dietary medium-chain 1-monoglycerides modulates the community and function of cecal microbiota of broilers. | 0 | 0.0 | 0 | --- | ||
| Wang, Hai et al. AMB Express. (2016). 6(1):110 27830497 | PM | 2016.12 | Expression of recombinant human lysozyme in transgenic chicken promotes the growth of Bifidobacterium in the intestine and improves postnatal growth of chicken. | 1 | 0.2 | 0 | --- | ||
| Xue, Guang-Da et al. Anim Nutr. (2017). 3(4):399-405 29767160 | PM | 2017.12 | Effects of yeast cell wall on growth performance, immune responses and intestinal short chain fatty acid concentrations of broilers in an experimental necrotic enteritis model. | 9 | 1.7 | 2 | --- | ||
| Sikorska, Michalina et al. Genes (Basel). (2021). 12(5) 34062867 | PM | 2021.05 | miRNA Profiling in the Chicken Liver under the Influence of Early Microbiota Stimulation with Probiotic, Prebiotic, and Synbiotic. | 4 | 2.2 | 1 | --- | ||
| Ayeni, Funmilola A et al. J Pharm Bioallied Sci. 8(1):69-73 26957873 | PM | 2016.00 | Identification and prevalence of tetracycline resistance in enterococci isolated from poultry in Ilishan, Ogun State, Nigeria. | 8 | 1.1 | 0 | --- | ||
| Zheng, L et al. Asian-Australas J Anim Sci. (2012). 25(2):261-6 25049560 | PM | 2012.02 | The Dietary Effects of Fermented Chlorella vulgaris (CBT(®)) on Production Performance, Liver Lipids and Intestinal Microflora in Laying Hens. | 11 | 1.0 | 0 | --- | ||
| Ehrmann, M A et al. J Appl Microbiol. (2002). 92(5):966-75 11972703 | PM | 2002.00 | Characterization of lactobacilli towards their use as probiotic adjuncts in poultry. | 46 | 2.2 | 1 | --- | ||
| Knudsen, Christelle et al. Anim Microbiome. (2021). 3(1):6 33499980 | PM | 2021.01 | The intestinal microbial composition in Greylag geese differs with steatosis induction mode: spontaneous or induced by overfeeding. | 0 | 0.0 | 0 | --- | ||
| Li, Zemin et al. Sci Rep. (2021). 11(1):10910 34035347 | PM | 2021.05 | The modulatory effects of alfalfa polysaccharide on intestinal microbiota and systemic health of Salmonella serotype (ser.) Enteritidis-challenged broilers. | 0 | 0.0 | 0 | --- | ||
34354526 | PM | .-- | 0 | 0.0 | 0 | --- | |||
| Lee, K W et al. Asian-Australas J Anim Sci. (2013). 26(11):1592-7 25049746 | PM | 2013.11 | Effect of Bacillus Subtilis-based Direct-fed Microbials on Immune Status in Broiler Chickens Raised on Fresh or Used Litter. | 8 | 0.9 | 2 | --- | ||
| Dheilly, Alexandra et al. Vet Microbiol. (2013). 166(3-4):655-8 23867084 | PM | 2013.10 | Antimicrobial resistance selection in avian pathogenic E. coli during treatment. | 3 | 0.3 | 0 | --- | ||
| Azizi, Mohammad Naeem et al. Animals (Basel). (2021). 11(2) 33572711 | PM | R | 2021.01 | Is Palm Kernel Cake a Suitable Alternative Feed Ingredient for Poultry? | 2 | 0.9 | 0 | --- | |
| Weinack, O M et al. Avian Dis. 26(3):585-95 6756372 | PM | 1982.00 | Reciprocal competitive exclusion of salmonella and Escherichia coli by native intestinal microflora of the chicken and turkey. | 3 | 0.1 | 0 | --- | ||
| Hayashi, Ricardo Mitsuo et al. Front Vet Sci. (2018). 5:13 29487856 | PM | 2018.00 | Effect of Feeding Bacillus subtilis Spores to Broilers Challenged with Salmonella enterica serovar Heidelberg Brazilian Strain UFPR1 on Performance, Immune Response, and Gut Health. | 6 | 1.1 | 1 | --- | ||
| Richards, Philip J et al. Front Microbiol. (2019). 10:476 30930877 | PM | 2019.00 | Phage Biocontrol of Campylobacter jejuni in Chickens Does Not Produce Collateral Effects on the Gut Microbiota. | 19 | 4.5 | 0 | --- | ||
| Weinack, O M et al. Avian Dis. 25(3):696-705 7032494 | PM | 1981.00 | Competitive exclusion of intestinal colonization of Escherichia coli in chicks. | 4 | 0.1 | 0 | --- | ||
| Wang, Huiwen et al. Vaccines (Basel). (2021). 9(6) 34205835 | PM | 2021.06 | Passive Immunization of Chickens with Anti-Enterobactin Egg Yolk Powder for Campylobacter Control. | 1 | 0.6 | 0 | --- | ||
| Cuccato, Matteo et al. Antibiotics (Basel). (2021). 10(2) 33540533 | PM | 2021.02 | 16S rRNA Sequencing Analysis of the Gut Microbiota in Broiler Chickens Prophylactically Administered with Antimicrobial Agents. | 2 | 1.0 | 0 | --- | ||
| Lauková, A et al. Lett Appl Microbiol. (2015). 60(6):531-5 25732357 | PM | 2015.06 | Use of bacteriocin-producing, probiotic strain Enterococcus faecium AL41 to control intestinal microbiota in farm ostriches. | 6 | 0.8 | 0 | --- | ||
| Maamar, Elaa et al. Int J Food Microbiol. (2018). 269:60-63 29421359 | PM | 2018.03 | Emergence of plasmid-mediated colistin-resistance in CMY-2-producing Escherichia coli of lineage ST2197 in a Tunisian poultry farm. | 12 | 2.4 | 1 | --- | ||
| Drovetski, Sergei V et al. Sci Rep. (2018). 8(1):6767 29695747 | PM | 2018.04 | Publisher Correction: Spatial Organization of the Gastrointestinal Microbiota in Urban Canada Geese. | 0 | 0.0 | 0 | --- | ||
| Bindari, Yugal Raj et al. Anim Microbiome. (2021). 3(1):66 34600571 | PM | 2021.10 | Microbial taxa in dust and excreta associated with the productive performance of commercial meat chicken flocks. | 2 | 1.4 | 0 | --- | ||
| Pourabedin, Mohsen et al. Can J Microbiol. (2014). 60(5):255-66 24766220 | PM | 2014.05 | Effects of mannan oligosaccharide and virginiamycin on the cecal microbial community and intestinal morphology of chickens raised under suboptimal conditions. | 12 | 1.4 | 5 | --- | ||
| Shanmugavelu, S et al. J Microbiol Methods. (2006). 67(1):93-101 16632004 | PM | 2006.10 | A fermentation assay to evaluate the effectiveness of antimicrobial agents on gut microflora. | 1 | 0.1 | 1 | --- | ||
| Cui, YuQing et al. Poult Sci. (2021). 100(3):100897 33518313 | PM | 2021.03 | High-throughput sequencing-based analysis of the intestinal microbiota of broiler chickens fed with compound small peptides of Chinese medicine. | 2 | 1.0 | 2 | --- | ||
| Cheng, Yeong-Hsiang et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(5):1232-1244 29901824 | PM | 2018.10 | Optimization of surfactin production from Bacillus subtilis in fermentation and its effects on Clostridium perfringens-induced necrotic enteritis and growth performance in broilers. | 10 | 2.3 | 2 | --- | ||
| Park, S H et al. Poult Sci. (2017). 96(7):2400-2411 28339832 | PM | 2017.07 | Effects of feeding Original XPC™ to broilers with a live coccidiosis vaccine under industrial conditions: Part 2. Cecal microbiota analysis. | 5 | 0.9 | 1 | --- | ||
| Wobeser, G; Rainnie, D J J Wildl Dis. (1987). 23(3):376-85 3625893 | PM | 1987.07 | Epizootic necrotic enteritis in wild geese. | 2 | 0.1 | 0 | --- | ||
| Baffoni, Loredana et al. Int J Food Microbiol. (2012). 157(2):156-61 22608658 | PM | 2012.07 | A Bifidobacterium-based synbiotic product to reduce the transmission of C. jejuni along the poultry food chain. | 25 | 2.3 | 6 | --- | ||
| Dec, Marta et al. Poult Sci. (2014). 93(10):2464-72 25104766 | PM | 2014.10 | Screening of Lactobacillus strains of domestic goose origin against bacterial poultry pathogens for use as probiotics. | 16 | 1.9 | 3 | --- | ||
| Borda-Molina, Daniel et al. Front Microbiol. (2020). 11:617800 33505386 | PM | 2020.00 | Caeca Microbial Variation in Broiler Chickens as a Result of Dietary Combinations Using Two Cereal Types, Supplementation of Crude Protein and Sodium Butyrate. | 2 | 0.6 | 1 | --- | ||
| Li, Yin-bo et al. Pak J Pharm Sci. (2014). 27(3 Suppl):713-7 24816710 | PM | 2014.05 | Effects of probiotics on the growth performance and intestinal micro flora of broiler chickens. | 10 | 1.1 | 2 | --- | ||
| Ngunjiri, John M et al. PeerJ. (2021). 9:e11806 34327060 | PM | 2021.00 | Influenza A virus infection in turkeys induces respiratory and enteric bacterial dysbiosis correlating with cytokine gene expression. | 0 | 0.0 | 0 | --- | ||
| Brenes, A et al. Br Poult Sci. (1989). 30(1):81-9 2787194 | PM | 1989.03 | Influence of peas (Pisum sativum) as a dietary ingredient and flavomycin supplementation on the performance and intestinal microflora of broiler chicks. | 2 | 0.1 | 1 | --- | ||
| Scupham, A J et al. Appl Environ Microbiol. (2010). 76(24):8026-32 20952640 | PM | 2010.12 | Antibiotic manipulation of intestinal microbiota to identify microbes associated with Campylobacter jejuni exclusion in poultry. | 9 | 0.7 | 4 | --- | ||
| Ziprin, Richard L; Harvey, Roger B Avian Dis. (2004). 48(3):647-50 15529989 | PM | 2004.09 | Inability of cecal microflora to promote reversion of viable nonculturable Campylobacter jejuni. | 1 | 0.1 | 0 | --- | ||
| Chung, C H; Day, D F Poult Sci. (2004). 83(8):1302-6 15339004 | PM | 2004.08 | Efficacy of Leuconostoc mesenteroides (ATCC 13146) isomaltooligosaccharides as a poultry prebiotic. | 12 | 0.6 | 2 | --- | ||
| Johansen, C H et al. Poult Sci. (2006). 85(4):579-87 16615340 | PM | C | 2006.04 | Effects of a Campylobacter jejuni infection on the development of the intestinal microflora of broiler chickens. | 7 | 0.4 | 6 | --- | |
| Molnár, A K et al. Br Poult Sci. (2011). 52(6):658-65 22221231 | PM | 2011.12 | Effect of different concentrations of Bacillus subtilis on growth performance, carcase quality, gut microflora and immune response of broiler chickens. | 11 | 1.0 | 2 | --- | ||
| Babot, Jaime D et al. Res Vet Sci. (2014). 97(1):8-17 24975325 | PM | 2014.08 | Selection of indigenous lactic acid bacteria to reinforce the intestinal microbiota of newly hatched chicken: relevance of in vitro and ex vivo methods for strains characterization. | 2 | 0.2 | 1 | --- | ||
| Orban, J I et al. Poult Sci. (1997). 76(3):482-90 9068048 | PM | 1997.03 | Effect of sucrose thermal oligosaccharide caramel, dietary vitamin-mineral level, and brooding temperature on growth and intestinal bacterial populations of broiler chickens. | 3 | 0.1 | 0 | --- | ||
| Pedroso, Adriana A et al. Front Microbiol. (2021). 12:694215 34211451 | PM | 2021.00 | Strength Lies in Diversity: How Community Diversity Limits Salmonella Abundance in the Chicken Intestine. | 1 | 0.4 | 0 | --- | ||
| Chaveerach, P et al. Poult Sci. (2004). 83(3):330-4 15049483 | PM | 2004.03 | Effect of organic acids in drinking water for young broilers on Campylobacter infection, volatile fatty acid production, gut microflora and histological cell changes. | 18 | 0.9 | 2 | --- | ||
| Li, Mao et al. Sci Rep. (2017). 7:45697 28383519 | PM | 2017.04 | Cassava foliage affects the microbial diversity of Chinese indigenous geese caecum using 16S rRNA sequencing. | 11 | 1.9 | 2 | --- | ||
| Inatomi, Takio; Otomaru, Konosuke Sci Rep. (2018). 8(1):5874 29651158 | PM | 2018.04 | Effect of dietary probiotics on the semen traits and antioxidative activity of male broiler breeders. | 9 | 1.8 | 2 | --- | ||
| Ma, Fang et al. J Appl Microbiol. (2021) 34608718 | PM | 2021.10 | Metabolite and transcriptome analyses revealed the modulation of fructo-oligosaccharide on ileum metabolism of Taiping chickens. | 0 | 0.0 | 0 | --- | ||
| Leinweber, Helena et al. Int J Antimicrob Agents. (2018). 52(2):283-286 29621590 | PM | 2018.08 | Vancomycin resistance in Enterococcus faecium isolated from Danish chicken meat is located on a pVEF4-like plasmid persisting in poultry for 18 years. | 6 | 1.3 | 0 | --- | ||
| Langhout, D J et al. Br J Nutr. (2000). 83(5):533-40 10953678 | PM | 2000.05 | Effect of viscosity on digestion of nutrients in conventional and germ-free chicks. | 5 | 0.2 | 0 | --- | ||
| Ohya, T; Sato, S Natl Inst Anim Health Q (Tokyo). (1983). 23(2):49-60 6680771 | PM | 1983.00 | Effects of dietary antibiotics on intestinal microflora in broiler chickens. | 1 | 0.0 | 1 | --- | ||
| Mañes-Lázaro, R et al. Br Poult Sci. (2017). 58(4):373-381 28318296 | PM | 2017.08 | Administration of Lactobacillus johnsonii FI9785 to chickens affects colonisation by Campylobacter jejuni and the intestinal microbiota. | 12 | 2.1 | 0 | --- | ||
| Dunislawska, Aleksandra et al. Poult Sci. (2021). 100(11):101449 34601437 | PM | 2021.11 | Proteome changes upon in ovo stimulation with Lactobacillus synbiotic in chicken liver. | 0 | 0.0 | 0 | --- | ||
| Pasquali, Frédérique et al. Vet Microbiol. (2015). 178(3-4):230-7 26013418 | PM | 2015.08 | Genetic diversity of Escherichia coli isolates of animal and environmental origins from an integrated poultry production chain. | 7 | 0.9 | 0 | --- | ||
| Aranda-Olmedo, I; Rubio, L A Poult Sci. (2016). 95(10):2414-20 26740134 | PM | 2016.10 | Heterogeneous size datasets of broiler intestinal microbial communities can be analyzed without normalization. | 0 | 0.0 | 0 | --- | ||
| Ferreira, Joseane Cristina et al. Diagn Microbiol Infect Dis. (2017). 88(4):361-364 28602519 | PM | 2017.08 | Diversity of plasmids harboring blaCMY-2 in multidrug-resistant Escherichia coli isolated from poultry in Brazil. | 4 | 0.7 | 0 | --- | ||
| Solís de los Santos, Fausto et al. J Food Prot. (2010). 73(2):251-7 20132669 | PM | 2010.02 | Caprylic Acid reduces enteric campylobacter colonization in market-aged broiler chickens but does not appear to alter cecal microbial populations. | 3 | 0.2 | 0 | --- | ||
| Timbermont, Leen et al. Vet Microbiol. (2009). 137(3-4):388-91 19201552 | PM | 2009.06 | Intra-species growth-inhibition by Clostridium perfringens is a possible virulence trait in necrotic enteritis in broilers. | 13 | 0.9 | 1 | --- | ||
| Choct, M et al. Br Poult Sci. (1999). 40(3):419-22 10475642 | PM | 1999.07 | Effects of a xylanase on individual bird variation, starch digestion throughout the intestine, and ileal and caecal volatile fatty acid production in chickens fed wheat. | 25 | 1.1 | 2 | --- | ||
| Gabriel, I et al. Poult Sci. (2003). 82(11):1668-76 14653460 | PM | 2003.11 | Effects of whole wheat feeding on the development of coccidial infection in broiler chickens. | 3 | 0.2 | 0 | --- | ||
| Hosseini, S M et al. Br Poult Sci. (2018). 59(1):92-99 28990804 | PM | 2018.02 | Effects of a blend of essential oils and overcrowding stress on the growth performance, meat quality and heat shock protein gene expression of broilers. | 2 | 0.4 | 0 | --- | ||
| Weinack, O M et al. Avian Dis. 23(4):1019-30 397829 | PM | 1979.00 | A supplemental test system to measure competitive exclusion of Salmonellae by native microflora in the chicken gut. | 0 | 0.0 | 0 | --- | ||
| Methner, U Dtsch Tierarztl Wochenschr. (2000). 107(10):402-8 11143962 | PM | 2000.10 | [Administration of autochthonous intestinal microflora--a method to prevent Salmonella infections in poultry]. | 1 | 0.0 | 0 | --- | ||
| Snoeyenbos, G H et al. Avian Dis. 23(4):904-14 546412 | PM | 1979.00 | Further studies on competitive exclusion for controlling Salmonellae in chickens. | 2 | 0.0 | 0 | --- | ||
| Song, Xiaoyan et al. J Anim Physiol Anim Nutr (Berl). (2021) 34338348 | PM | 2021.08 | Effects of Lactobacillus plantarum on growth traits, slaughter performance, serum markers and intestinal bacterial community of Daheng broilers. | 0 | 0.0 | 0 | --- | ||
| Kondo, F; Tateyama, S Res Vet Sci. (1990). 48(2):175-9 2333425 | PM | 1990.03 | In vitro activity of chloropolysporin-C, a new glycopeptide-group antibiotic, on Clostridium perfringens isolates and its in vivo activity against C perfringens and other intestinal microflora of the caeca of broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Kassaify, Z G; Mine, Y Poult Sci. (2004). 83(5):753-60 15141832 | PM | 2004.05 | Effect of food protein supplements on Salmonella enteritidis infection and prevention in laying hens. | 1 | 0.1 | 0 | --- | ||
| Wooley, R E et al. Avian Dis. 43(2):245-50 10396637 | PM | 1999.00 | Inhibition of Salmonella typhimurium in the chicken intestinal tract by a transformed avirulent avian Escherichia coli. | 8 | 0.3 | 0 | --- | ||
| Skrivanova, Eva et al. PLoS One. (2016). 11(12):e0167638 27936245 | PM | 2016.00 | In Vitro Selective Growth-Inhibitory Effect of 8-Hydroxyquinoline on Clostridium perfringens versus Bifidobacteria in a Medium Containing Chicken Ileal Digesta. | 4 | 0.6 | 0 | --- | ||
| Goren, E et al. Vet Q. (1984). 6(2):73-9 6740893 | PM | 1984.04 | Protection of chicks against salmonella infection induced by spray application of intestinal microflora in the hatchery. | 3 | 0.1 | 0 | --- | ||
| Rezvani, Morvarid et al. Genome Announc. (2016). 4(6) 27811103 | PM | 2016.11 | Draft Genome Sequence of Lactobacillus crispatus C25 Isolated from Chicken Cecum. | 5 | 0.8 | 0 | --- | ||
| Winsor, D K et al. Appl Environ Microbiol. (1981). 42(6):1123-4 7032423 | PM | 1981.12 | Gram-negative, aerobic, enteric pathogens among intestinal microflora of wild turkey vultures (Cathartes aura) in west central Texas. | 9 | 0.2 | 0 | --- | ||
| Bailey, J S et al. Avian Dis. 32(2):324-9 3041958 | PM | 1988.00 | Effect of anticoccidial and antimicrobial feed additives on prevention of Salmonella colonization of chicks treated with anaerobic cultures of chicken feces. | 1 | 0.0 | 0 | --- | ||
| Naqi, S A et al. Avian Dis. 15(1):14-21 4926593 | PM | 1971.00 | The intestinal microflora of turkeys: comparison of apparently healthy and bluecomb-infected turkey poults. | 1 | 0.0 | 0 | --- | ||
| Goren, E et al. Vet Q. (1984). 6(1):22-6 6730287 | PM | 1984.01 | Protection of chicks against Salmonella infantis infection induced by strict anaerobically cultured intestinal microflora. | 0 | 0.0 | 0 | --- | ||
| McHan, F et al. Avian Dis. 32(2):215-9 3041955 | PM | 1988.00 | The influence of physical and environmental variables on the in vitro attachment of Salmonella typhimurium to the ceca of chickens. | 1 | 0.0 | 0 | --- | ||
| Hammons, Susan et al. Syst Appl Microbiol. (2010). 33(5):275-81 20554146 | PM | 2010.08 | A small variation in diet influences the Lactobacillus strain composition in the crop of broiler chickens. | 18 | 1.4 | 8 | --- | ||
| Ishihara, N et al. Poult Sci. (2000). 79(5):689-97 10824957 | PM | 2000.05 | Preventive effect of partially hydrolyzed guar gum on infection of Salmonella enteritidis in young and laying hens. | 5 | 0.2 | 0 | --- | ||
| Czarnecki, C M Avian Dis. 33(3):466-72 2775095 | PM | 1989.00 | Furazolidone toxicity in neomycin-treated turkey poults. | 0 | 0.0 | 0 | --- | ||
| Soerjadi, A S et al. Avian Dis. 25(4):1027-33 7039590 | PM | 1981.00 | The influence of lactobacilli on the competitive exclusion of paratyphoid salmonellae in chickens. | 4 | 0.1 | 0 | --- | ||
| Stavric, S et al. J Appl Bacteriol. (1991). 70(5):414-21 1831448 | PM | 1991.05 | Effect of avian intestinal microflora possessing adhering and hydrophobic properties on competitive exclusion of Salmonella typhimurium from chicks. | 2 | 0.1 | 0 | --- | ||
| Goren, E et al. Vet Q. (1988). 10(4):249-55 3218067 | PM | 1988.10 | Reduction of salmonella infection of broilers by spray application of intestinal microflora: a longitudinal study. | 2 | 0.1 | 1 | --- | ||
| Soerjadi-Liem, A S et al. Avian Dis. 28(1):139-46 6721792 | PM | 1984.00 | Comparative studies on competitive exclusion of three isolates of Campylobacter fetus subsp. jejuni in chickens by native gut microflora. | 8 | 0.2 | 0 | --- | ||
| Silva, E N et al. Avian Dis. 25(1):68-73 7271664 | PM | 1981.00 | The influence of native gut microflora on the colonization and infection of Salmonella gallinarum in chickens. | 0 | 0.0 | 0 | --- | ||
| Abu-Ruwaida, A S et al. Microbios. (1995). 83(334):59-69 7476569 | PM | 1995.00 | Salmonella exclusion in broiler chicks by the competitive action of adult gut microflora. | 2 | 0.1 | 0 | --- | ||
| BEATTIE, J; SHRIMPTON, D H Q J Exp Physiol Cogn Med Sci. (1958). 43(4):399-407 13591507 | PM | 1958.10 | Surgical and chemical techniques for in vivo studies of the metabolism of the intestinal microflora of domestic fowls. | 0 | 0.0 | 0 | --- | ||
| Snoeyenbos, G H et al. Avian Dis. 22(2):273-87 354629 | PM | 1978.00 | Protecting chicks and poults from Salmonellae by oral administration of "normal" gut microflora. | 10 | 0.2 | 0 | --- | ||
| Shrimpton, D H J Appl Bacteriol. (1966). 29(2):222-30 6008825 | PM | 1966.08 | Metabolism of the intestinal microflora in birds and its possible influence on the composition of flavour precursors in their muscles. | 0 | 0.0 | 0 | --- | ||
| Lima, Diane A et al. Virus Res. (2019). 261:9-20 30543873 | PM | 2019.02 | The intestinal virome of malabsorption syndrome-affected and unaffected broilers through shotgun metagenomics. | 29 | 7.1 | 0 | --- | ||
| Zhu, Lihui et al. Appl Microbiol Biotechnol. (2019). 103(1):461-472 30368579 | PM | 2019.01 | Heat stress mediates changes in fecal microbiome and functional pathways of laying hens. | 33 | 7.9 | 7 | --- | ||
| Lili, Geng et al. J Poult Sci. (2018). 55(1):10-16 32055151 | PM | 2018.00 | High-throughput Sequencing-based Analysis of the Intestinal Microbiota of Broiler Chickens Fed Genetically Modified Rice Expressing Cry1Ac/Cry1Ab Chimeric Bacillus thuringiensis Protein. | 0 | 0.0 | 0 | --- | ||
| Kropáčková, Lucie et al. PLoS One. (2017). 12(6):e0179945 28662106 | PM | 2017.00 | Variation between the oral and faecal microbiota in a free-living passerine bird, the great tit (Parus major). | 10 | 1.6 | 4 | --- | ||
| Yuan, Zhongyang et al. Poult Sci. (2020). 99(3):1515-1527 32111319 | PM | 2020.03 | Enterotype identification and its influence on regulating the duodenum metabolism in chickens. | 3 | 1.0 | 0 | --- | ||
| Qorbanpour, Mehdi et al. Animals (Basel). (2018). 8(7) 30011890 | PM | 2018.07 | Effect of Dietary Ginger (Zingiber officinale Roscoe) and Multi-Strain Probiotic on Growth and Carcass Traits, Blood Biochemistry, Immune Responses and Intestinal Microflora in Broiler Chickens. | 10 | 2.1 | 2 | --- | ||
| Palliyaguru, M W C D et al. Br Poult Sci. (2004). 45 Suppl 1:S58-9 15222376 | PM | 2004.04 | Effect of different probiotics on nutrient utilisation and intestinal microflora of broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Shi, Jie et al. Sci Rep. (2021). 11(1):11934 34099832 | PM | 2021.06 | Chicken-eaters and pork-eaters have different gut microbiota and tryptophan metabolites. | 0 | 0.0 | 0 | --- | ||
| Wang, Yang et al. Front Microbiol. (2021). 12:705758 34305875 | PM | 2021.00 | Protective Effect of Lactobacillus plantarum P8 on Growth Performance, Intestinal Health, and Microbiota in Eimeria-Infected Broilers. | 1 | 0.4 | 0 | --- | ||
| Castañeda, Claudia D et al. Poult Sci. (2021). 100(6):101125 33940280 | PM | C | 2021.06 | In ovo administration of Bacillus subtilis serotypes effect hatchability, 21-day performance, and intestinal microflora. | 1 | 0.6 | 0 | --- | |
| Roto, Stephanie M et al. Front Vet Sci. (2015). 2:28 26664957 | PM | R | 2015.00 | An Introduction to the Avian Gut Microbiota and the Effects of Yeast-Based Prebiotic-Type Compounds as Potential Feed Additives. | 35 | 4.2 | 6 | --- | |
| Leusink, G et al. Poult Sci. (2010). 89(7):1514-23 20548081 | PM | 2010.07 | Growth performance, meat quality, and gut microflora of broiler chickens fed with cranberry extract. | 11 | 0.9 | 1 | --- | ||
| Liu, J R et al. Br Poult Sci. (2007). 48(4):507-14 17701504 | PM | 2007.08 | Evaluation of an intestinal Lactobacillus reuteri strain expressing rumen fungal xylanase as a probiotic for broiler chickens fed on a wheat-based diet. | 12 | 0.8 | 2 | --- | ||
| Zhang, Yan et al. Microb Ecol. (2017). 73(4):966-977 27752719 | PM | 2017.05 | Spatial Microbial Composition Along the Gastrointestinal Tract of Captive Attwater's Prairie Chicken. | 11 | 1.9 | 4 | --- | ||
| Abdel-Latif, Mervat A et al. Animals (Basel). (2021). 11(8) 34438756 | PM | 2021.08 | Quercetin Dietary Supplementation Advances Growth Performance, Gut Microbiota, and Intestinal mRNA Expression Genes in Broiler Chickens. | 1 | 0.6 | 0 | --- | ||
| Xiang, Hai et al. Front Microbiol. (2021). 12:643025 33815329 | PM | 2021.00 | Specific Microbial Taxa and Functional Capacity Contribute to Chicken Abdominal Fat Deposition. | 3 | 1.3 | 1 | --- | ||
| Wang, Yanan et al. Environ Int. (2020). 138:105649 32200314 | PM | 2020.05 | Integrated metagenomic and metatranscriptomic profiling reveals differentially expressed resistomes in human, chicken, and pig gut microbiomes. | 4 | 1.4 | 1 | --- | ||
| Huang, Ting et al. Front Microbiol. (2019). 10:2309 31681193 | PM | 2019.00 | The Effect of Clostridium butyricum on Gut Microbiota, Immune Response and Intestinal Barrier Function During the Development of Necrotic Enteritis in Chickens. | 16 | 3.8 | 4 | --- | ||
| Bailey, J S et al. Poult Sci. (1991). 70(12):2433-8 1784565 | PM | 1991.12 | Effect of fructooligosaccharide on Salmonella colonization of the chicken intestine. | 11 | 0.4 | 2 | --- | ||
| Tsukahara, Takamitsu et al. Anim Sci J. (2018). 89(4):679-687 29282825 | PM | 2018.04 | Inclusion of Bacillus amyloliquefaciens strain TOA5001 in the diet of broilers suppresses the symptoms of coccidiosis by modulating intestinal microbiota. | 6 | 1.2 | 1 | --- | ||
| Khajeh Bami, Mohammad et al. Probiotics Antimicrob Proteins. (2020). 12(2):461-472 31134523 | PM | 2020.06 | Effect of Dietary Bacillus coagulans and Different Forms of Zinc on Performance, Intestinal Microbiota, Carcass and Meat Quality of Broiler Chickens. | 1 | 0.4 | 0 | --- | ||
| Li, Xiujin et al. Poult Sci. (2020). 99(4):1805-1812 32241460 | PM | 2020.04 | Impacts of colored light-emitting diode illumination on the growth performance and fecal microbiota in goose. | 0 | 0.0 | 0 | --- | ||
| Lei, Fang et al. Appl Environ Microbiol. (2012). 78(16):5763-72 22685152 | PM | 2012.08 | Higher-level production of volatile fatty acids in vitro by chicken gut microbiotas than by human gut microbiotas as determined by functional analyses. | 24 | 2.3 | 9 | --- | ||
| Samli, H E et al. Br Poult Sci. (2010). 51(4):564-8 20924852 | PM | 2010.08 | Effects of Enterococcus faecium supplementation and floor type on performance, morphology of erythrocytes and intestinal microbiota in broiler chickens. | 7 | 0.6 | 2 | --- | ||
| MUSHIN, R; ASHBURNER, F M J Bacteriol. (1962). 83:1260-7 14477540 | PM | 1962.06 | Gastrointestinal microflora of mutton birds (Puffinus tenuirostris) in relation to "limy" disease. | 2 | 0.0 | 0 | --- | ||
| Hatew, Bayissa et al. J Food Sci. (2011). 76(8):M522-30 21913924 | PM | 2011.10 | Antagonistic intestinal microflora produces antimicrobial substance inhibitory to Pseudomonas species and other spoilage organisms. | 1 | 0.1 | 0 | --- | ||
| Devreese, Mathias et al. BMC Vet Res. (2014). 10:289 25440469 | PM | 2014.12 | Effect of administration route and dose escalation on plasma and intestinal concentrations of enrofloxacin and ciprofloxacin in broiler chickens. | 11 | 1.3 | 0 | --- | ||
| Schokker, Dirkjan et al. BMC Genomics. (2017). 18(1):241 28320307 | PM | 2017.03 | Perturbation of microbiota in one-day old broiler chickens with antibiotic for 24 hours negatively affects intestinal immune development. | 31 | 5.2 | 12 | --- | ||
| Liu, Bing et al. Anim Nutr. (2021). 7(2):576-586 34258447 | PM | 2021.06 | Tolerance and safety evaluation of sodium sulfate: A subchronic study in laying hens. | 0 | 0.0 | 0 | --- | ||
| Roesicke, E; Greuel, E Dtsch Tierarztl Wochenschr. (1992). 99(12):492-4 1289044 | PM | 1992.12 | [The survival ability of salmonella, coccidia oocysts and ascarid eggs in laying hen feces from different housing systems]. | 0 | 0.0 | 0 | --- | ||
| Kwak, Min-Jin et al. J Anim Sci Biotechnol. (2021). 12(1):81 34247658 | PM | 2021.07 | Dietary sophorolipid accelerates growth by modulation of gut microbiota population and intestinal environments in broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Arab, Juan P et al. Hepatol Int. (2018). 12(Suppl 1):24-33 28550391 | PM | 2018.02 | Gut-liver axis, cirrhosis and portal hypertension: the chicken and the egg. | 43 | 8.5 | 0 | --- | ||
| Lan, Junhong et al. Poult Sci. (2021). 100(3):100875 33516466 | PM | 2021.03 | Effects of α-glyceryl monolaurate on growth, immune function, volatile fatty acids, and gut microbiota in broiler chickens. | 1 | 0.5 | 1 | --- | ||
| Lucke, Annegret et al. Front Microbiol. (2018). 9:804 29922239 | PM | 2018.00 | Dietary Deoxynivalenol Contamination and Oral Lipopolysaccharide Challenge Alters the Cecal Microbiota of Broiler Chickens. | 21 | 4.0 | 3 | --- | ||
| Hagey, Lee R et al. Auk. (2010). 127(4):820-831 21113274 | PM | 2010.10 | COMPLEX EVOLUTION OF BILE SALTS IN BIRDS. | 6 | 0.5 | 0 | --- | ||
| Viveros, A et al. Poult Sci. (2011). 90(3):566-78 21325227 | PM | C | 2011.03 | Effects of dietary polyphenol-rich grape products on intestinal microflora and gut morphology in broiler chicks. | 70 | 5.8 | 7 | --- | |
| Zhu, Chunhong et al. Poult Sci. (2020). 99(2):1096-1106 32029146 | PM | 2020.02 | Analysis of microbial diversity and composition in small intestine during different development times in ducks. | 4 | 1.3 | 3 | --- | ||
| Lin, Yicen et al. PLoS One. (2017). 12(8):e0182426 28771569 | PM | 2017.00 | Disruption in the cecal microbiota of chickens challenged with Clostridium perfringens and other factors was alleviated by Bacillus licheniformis supplementation. | 28 | 4.5 | 12 | --- | ||
| Turk, D E; Littlejohn, V P Poult Sci. (1987). 66(9):1466-9 3684872 | PM | 1987.09 | Coccidial infections and gut microflora. | 2 | 0.1 | 0 | --- | ||
| Sattler, Verity Ann et al. PLoS One. (2014). 9(2):e90208 24587284 | PM | 2014.00 | Development of a strain-specific real-time PCR assay for enumeration of a probiotic Lactobacillus reuteri in chicken feed and intestine. | 8 | 0.9 | 0 | --- | ||
| Zhang, Xiaolong et al. Microb Biotechnol. (2021) 34264533 | PM | 2021.07 | Caecal microbiota could effectively increase chicken growth performance by regulating fat metabolism. | 0 | 0.0 | 0 | --- | ||
| Sławińska, Anna et al. Folia Biol (Krakow). (2014). 62(3):277-85 25403081 | PM | 2014.00 | Influence of synbiotics delivered in ovo on immune organs development and structure. | 21 | 2.3 | 6 | --- | ||
| Tan, Zhen et al. PLoS One. (2019). 14(12):e0225692 31805086 | PM | 2019.00 | Characterization of the cecal microbiome composition of Wenchang chickens before and after fattening. | 3 | 0.7 | 1 | --- | ||
| Luo, Qihui et al. Front Microbiol. (2019). 10:624 30984145 | PM | 2019.00 | Impacts of Duck-Origin Parvovirus Infection on Cherry Valley Ducklings From the Perspective of Gut Microbiota. | 2 | 0.5 | 1 | --- | ||
| Wang, Yan et al. Sci Rep. (2017). 7(1):6400 28743928 | PM | 2017.07 | Effect of probiotics on the meat flavour and gut microbiota of chicken. | 32 | 5.6 | 11 | --- | ||
| Soerjadi-Liem, A S et al. Avian Dis. 28(1):256-60 6721799 | PM | 1984.00 | Establishment and competitive exclusion of Yersinia enterocolitica in the gut of monoxenic and holoxenic chicks. | 0 | 0.0 | 0 | --- | ||
Food Funct. (2019). 10(8):4834-4843 31321397 | PM | 2019.08 | Alterations in gut microflora populations and brush border functionality following intra-amniotic administration (Gallus gallus) of wheat bran prebiotic extracts. | 5 | 1.4 | 3 | --- | ||
| Reyer, Henry et al. Sci Rep. (2015). 5:16387 26552583 | PM | 2015.11 | The genetics of feed conversion efficiency traits in a commercial broiler line. | 26 | 3.5 | 0 | --- | ||
| Röhe, I et al. Poult Sci. (2020). 99(10):5018-5026 32988538 | PM | 2020.10 | Effect of feeding different levels of lignocellulose on performance, nutrient digestibility, excreta dry matter, and intestinal microbiota in slow growing broilers. | 2 | 0.8 | 1 | --- | ||
| Liu, Long et al. Sci Rep. (2016). 6:31763 27550859 | PM | 2016.08 | Prosteatotic and Protective Components in a Unique Model of Fatty Liver: Gut Microbiota and Suppressed Complement System. | 19 | 2.9 | 4 | --- | ||
| Brilhante, R S N et al. J Med Microbiol. (2010). 59(Pt 6):718-723 20150318 | PM | 2010.06 | Characterization of the gastrointestinal yeast microbiota of cockatiels (Nymphicus hollandicus): a potential hazard to human health. | 9 | 0.7 | 0 | --- | ||
| Witzig, Maren et al. PLoS One. (2015). 10(12):e0145588 26681437 | PM | 2015.00 | Correction: Spatial Variation of the Gut Microbiota in Broiler Chickens as Affected by Dietary Available Phosphorus and Assessed by T-RFLP Analysis and 454 Pyrosequencing. | 3 | 0.4 | 0 | --- | ||
30774673 | PM | .-- | 0 | 0.0 | 0 | --- | |||
| Hird, Sarah M et al. PeerJ. (2014). 2:e321 24711971 | PM | 2014.00 | Sampling locality is more detectable than taxonomy or ecology in the gut microbiota of the brood-parasitic Brown-headed Cowbird (Molothrus ater). | 48 | 5.2 | 14 | --- | ||
| Shao, Yuxin et al. J Microbiol. (2014). 52(12):1002-11 25467118 | PM | C | 2014.12 | Effect of zinc on growth performance, gut morphometry, and cecal microbial community in broilers challenged with Salmonella enterica serovar typhimurium. | 18 | 2.2 | 4 | --- | |
| Hu, C H et al. Poult Sci. (2013). 92(1):143-50 23243241 | PM | 2013.01 | Effects of zinc oxide-montmorillonite hybrid on growth performance, intestinal structure, and function of broiler chicken. | 14 | 1.4 | 1 | --- | ||
| Crhanova, Magdalena et al. Microorganisms. (2019). 7(11) 31661802 | PM | 2019.10 | Systematic Culturomics Shows that Half of Chicken Caecal Microbiota Members can be Grown in Vitro Except for Two Lineages of Clostridiales and a Single Lineage of Bacteroidetes. | 9 | 2.6 | 5 | --- | ||
| Tian, Rong-Chuan; Huang, Wei Genome Announc. (2017). 5(31) 28774986 | PM | 2017.08 | Draft Genome Sequences of the Multiresistant Escherichia coli C20 Strain, Isolated from Domestic Chicken Gut Microbiota. | 0 | 0.0 | 0 | --- | ||
| Chang, Chi Huan et al. Asian-Australas J Anim Sci. (2020). 33(11):1797-1808 32054193 | PM | 2020.11 | Effects of multi-strain probiotic supplementation on intestinal microbiota, tight junctions, and inflammation in young broiler chickens challenged with Salmonella enterica subsp. enterica. | 5 | 2.1 | 1 | --- | ||
| Han, Zifeng et al. Infect Immun. (2017). 85(11) 28808158 | PM | 2017.11 | Influence of the Gut Microbiota Composition on Campylobacter jejuni Colonization in Chickens. | 27 | 5.1 | 12 | --- | ||
| Zhang, Liang et al. Integr Zool. (2014). 9(5):583-9 25420637 | PM | 2014.11 | Influence of dietary feathers on the fecal microbiota in captive Arctic fox: do dietary hair or feathers play a role in the evolution of carnivorous mammals? | 0 | 0.0 | 0 | --- | ||
| Colombino, Elena et al. J Anim Sci Biotechnol. (2020). 11:63 32577234 | PM | 2020.00 | Dried fruit pomace inclusion in poultry diet: growth performance, intestinal morphology and physiology. | 2 | 0.6 | 0 | --- | ||
| Singh, K M et al. Mol Biol Rep. (2012). 39(12):10595-602 23053958 | PM | 2012.12 | High through put 16S rRNA gene-based pyrosequencing analysis of the fecal microbiota of high FCR and low FCR broiler growers. | 66 | 6.4 | 28 | --- | ||
| Stavric, S; D'Aoust, J-Y J Food Prot. (1993). 56(2):173-180 31084112 | PM | 1993.02 | Undefined and Defined Bacterial Preparations for the Competitive Exclusion of Salmonella in Poultry - A Review. | 2 | 0.1 | 0 | --- | ||
| Geier, M S et al. Br Poult Sci. (2011). 52(5):564-72 22029783 | PM | 2011.10 | The effects of lactoferrin on the intestinal environment of broiler chickens. | 3 | 0.3 | 2 | --- | ||
| Zhao, Yao et al. AMB Express. (2017). 7(1):147 28697583 | PM | 2017.12 | The gut microbiota in larvae of the housefly Musca domestica and their horizontal transfer through feeding. | 11 | 2.1 | 0 | --- | ||
| Muramatsu, T et al. Am J Vet Res. (1991). 52(7):1178-81 1654037 | PM | 1991.07 | Effect of intestinal microflora on digestible energy and fiber digestion in chickens fed a high-fiber diet. | 3 | 0.1 | 1 | --- | ||
| Snoeyenbos, G H et al. Avian Dis. 29(4):1004-11 3914269 | PM | 1985.00 | Large-scale trials to study competitive exclusion of salmonella in chickens. | 0 | 0.0 | 0 | --- | ||
| Pham, Van Hieu et al. J Anim Sci Biotechnol. (2020). 11:18 32110391 | PM | 2020.00 | Dietary encapsulated essential oils and organic acids mixture improves gut health in broiler chickens challenged with necrotic enteritis. | 24 | 7.4 | 4 | --- | ||
| Gao, Zhenhua et al. Anim Nutr. (2017). 3(2):109-113 29767043 | PM | 2017.06 | Study of Bacillus subtilis on growth performance, nutrition metabolism and intestinal microflora of 1 to 42 d broiler chickens. | 10 | 1.7 | 2 | --- | ||
| Kubiś, Marta et al. Animals (Basel). (2020). 10(12) 33255285 | PM | 2020.11 | Emulsifier and Xylanase Can Modulate the Gut Microbiota Activity of Broiler Chickens. | 3 | 1.3 | 0 | --- | ||
| Ding, Jinmei et al. mSystems. (2021). 6(1) 33402350 | PM | 2021.01 | Heritable Gut Microbiome Associated with Salmonella enterica Serovar Pullorum Infection in Chickens. | 2 | 0.9 | 2 | --- | ||
| Daneshmand, Ali et al. Sci Rep. (2019). 9(1):14176 31578353 | PM | C | 2019.10 | Antimicrobial peptide, cLF36, affects performance and intestinal morphology, microflora, junctional proteins, and immune cells in broilers challenged with E. coli. | 13 | 3.8 | 1 | --- | |
| Bikric, Seda et al. Probiotics Antimicrob Proteins. (2021) 33913089 | PM | 2021.04 | Characterization of Exopolysaccharides (EPSs) Obtained from Ligilactobacillus salivarius Strains and Investigation at the Prebiotic Potential as an Alternative to Plant Prebiotics at Poultry. | 0 | 0.0 | 0 | --- | ||
| Patterson, J A; Burkholder, K M Poult Sci. (2003). 82(4):627-31 12710484 | PM | R | 2003.04 | Application of prebiotics and probiotics in poultry production. | 171 | 8.6 | 32 | --- | |
| Dec, M et al. Br Poult Sci. (2015). 56(4):416-24 26105622 | PM | 2015.00 | Antibiotic susceptibility of Lactobacillus strains isolated from domestic geese. | 6 | 0.7 | 1 | --- | ||
| Chuang, Wen Yang et al. Animals (Basel). (2021). 11(9) 34573516 | PM | 2021.08 | Intestinal Microbiota, Anti-Inflammatory, and Anti-Oxidative Status of Broiler Chickens Fed Diets Containing Mushroom Waste Compost By-Products. | 0 | 0.0 | 0 | --- | ||
| Liu, Lijuan et al. Microb Biotechnol. (2021) 34536334 | PM | 2021.09 | Transplantion of predominant Lactobacilli from native hens to commercial hens could indirectly regulate their ISC activity by improving intestinal microbiota. | 0 | 0.0 | 0 | --- | ||
| Scocco, P et al. J Anim Physiol Anim Nutr (Berl). (2017). 101(4):676-684 27550621 | PM | C | 2017.08 | Gut complex carbohydrates and intestinal microflora in broiler chickens fed with oregano (Origanum vulgare L.) aqueous extract and vitamin E. | 6 | 1.1 | 1 | --- | |
| Kan, Liugang et al. Front Microbiol. (2021). 12:623739 34084155 | PM | 2021.00 | Probiotics Bacillus licheniformis Improves Intestinal Health of Subclinical Necrotic Enteritis-Challenged Broilers. | 1 | 0.4 | 0 | --- | ||
| Zhai, Hengxiao et al. Anim Nutr. (2018). 4(2):179-186 30140757 | PM | R | 2018.06 | Potential of essential oils for poultry and pigs. | 38 | 8.0 | 4 | --- | |
| Balzan, Stefania et al. Molecules. (2021). 26(14) 34299582 | PM | 2021.07 | Employment of Phenolic Compounds from Olive Vegetation Water in Broiler Chickens: Effects on Gut Microbiota and on the Shelf Life of Breast Fillets. | 0 | 0.0 | 0 | --- | ||
| Gungor, E et al. Animal. (2021). 15(4):100194 33640294 | PM | 2021.04 | Effect of raw and fermented grape seed on growth performance, antioxidant capacity, and cecal microflora in broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Terada, T et al. Poult Sci. (2020). 99(7):3385-3392 32616232 | PM | 2020.07 | Effect of antibiotic treatment on microbial composition and expression of antimicrobial peptides and cytokines in the chick cecum. | 2 | 0.7 | 0 | --- | ||
| Lepp, Dion et al. PLoS One. (2010). 5(5):e10795 20532244 | PM | 2010.05 | Identification of novel pathogenicity loci in Clostridium perfringens strains that cause avian necrotic enteritis. | 43 | 3.4 | 1 | --- | ||
| Feye, Kristina M et al. Front Microbiol. (2019). 10:3062 32038534 | PM | 2019.00 | The Preliminary Development of an in vitro Poultry Cecal Culture Model to Evaluate the Effects of Original XPCTM for the Reduction of Campylobacter jejuni and Its Potential Effects on the Microbiota. | 2 | 0.5 | 0 | --- | ||
| Teng, Po-Yun; Kim, Woo Kyun Front Vet Sci. (2018). 5:245 30425993 | PM | R | 2018.00 | Review: Roles of Prebiotics in Intestinal Ecosystem of Broilers. | 0 | 0.0 | 0 | --- | |
| Kim, Min-Jeong et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(5):1220-1231 29953673 | PM | 2018.10 | Effects of dietary phytoncides extracted from Korean pine (Pinus koraiensis) cone on performance, egg quality, gut microflora, and immune response in laying hens. | 1 | 0.2 | 0 | --- | ||
| Saettone, Vittorio et al. Animals (Basel). (2020). 10(12) 33255356 | PM | R | 2020.11 | State-of-the-Art of the Nutritional Alternatives to the Use of Antibiotics in Humans and Monogastric Animals. | 3 | 1.3 | 0 | --- | |
| Banerjee, Sohini et al. Microbiology (Reading). (2018). 164(2):142-153 29393019 | PM | 2018.02 | Increased productivity in poultry birds by sub-lethal dose of antibiotics is arbitrated by selective enrichment of gut microbiota, particularly short-chain fatty acid producers. | 8 | 1.6 | 2 | --- | ||
| Blajman, J E et al. Res Vet Sci. (2017). 114:388-394 28743079 | PM | 2017.10 | Impact of lyophilized Lactobacillus salivarius DSPV 001P administration on growth performance, microbial translocation, and gastrointestinal microbiota of broilers reared under low ambient temperature. | 2 | 0.4 | 1 | --- | ||
| Torok, Valeria A et al. Appl Environ Microbiol. (2008). 74(3):783-91 18065621 | PM | 2008.02 | Application of methods for identifying broiler chicken gut bacterial species linked with increased energy metabolism. | 55 | 3.6 | 18 | --- | ||
| Shabani, A et al. Poult Sci. (2019). 98(10):4909-4918 31065719 | PM | 2019.10 | Inclusion of fish waste silage in broiler diets affects gut microflora, cecal short-chain fatty acids, digestive enzyme activity, nutrient digestibility, and excreta gas emission. | 2 | 0.6 | 1 | --- | ||
| Vounba, Passoret et al. PLoS One. (2019). 14(3):e0214304 30913237 | PM | 2019.00 | Prevalence of antimicrobial resistance and potential pathogenicity, and possible spread of third generation cephalosporin resistance, in Escherichia coli isolated from healthy chicken farms in the region of Dakar, Senegal. | 7 | 1.6 | 0 | --- | ||
| Kollarcikova, Miloslava et al. Microorganisms. (2020). 8(10) 32992519 | PM | 2020.09 | Different Bacteroides Species Colonise Human and Chicken Intestinal Tract. | 4 | 1.6 | 2 | --- | ||
| Yang, Jin-Long et al. World J Gastroenterol. (2008). 14(18):2872-6 18473413 | PM | 2008.05 | A simple and rapid method for extracting bacterial DNA from intestinal microflora for ERIC-PCR detection. | 27 | 1.8 | 0 | --- | ||
| Tarabees, Reda et al. Probiotics Antimicrob Proteins. (2020). 12(3):860-872 31650414 | PM | 2020.09 | Effects of the Probiotic Candidate E. faecalis-1, the Poulvac E. coli Vaccine, and their Combination on Growth Performance, Caecal Microbial Composition, Immune Response, and Protection against E. coli O78 Challenge in Broiler Chickens. | 2 | 0.8 | 0 | --- | ||
| Varmuzova, Karolina et al. Front Microbiol. (2016). 7:957 27379083 | PM | 2016.00 | Composition of Gut Microbiota Influences Resistance of Newly Hatched Chickens to Salmonella Enteritidis Infection. | 26 | 3.6 | 12 | --- | ||
| Proszkowiec-Weglarz, Monika et al. Poult Sci. (2020). 99(10):5143-5148 32988553 | PM | 2020.10 | Research Note: Effect of butyric acid glycerol esters on ileal and cecal mucosal and luminal microbiota in chickens challenged with Eimeria maxima. | 3 | 1.2 | 0 | --- | ||
| Pourabedin, Mohsen et al. Microbiome. (2015). 3:15 25874109 | PM | 2015.00 | Xylo-oligosaccharides and virginiamycin differentially modulate gut microbial composition in chickens. | 46 | 5.6 | 20 | --- | ||
| Wu, Yi-Tei et al. Poult Sci. (2020). 99(8):4034-4043 32731991 | PM | 2020.08 | Modulations of growth performance, gut microbiota, and inflammatory cytokines by trehalose on Salmonella Typhimurium-challenged broilers. | 1 | 0.4 | 0 | --- | ||
| Moore, Robert J Avian Pathol. (2016). 45(3):275-81 26926926 | PM | R | 2016.06 | Necrotic enteritis predisposing factors in broiler chickens. | 51 | 7.6 | 8 | --- | |
| van Kuijk, Sandra J A et al. J Anim Sci Biotechnol. (2021). 12(1):38 33685507 | PM | 2021.03 | Hydroxychloride trace minerals have a positive effect on growth performance, carcass quality and impact ileal and cecal microbiota in broiler chickens. | 1 | 0.5 | 0 | --- | ||
| Wu, Shengru et al. J Anim Sci Biotechnol. (2018). 9:74 30338065 | PM | 2018.00 | Intestinal toxicity of deoxynivalenol is limited by supplementation with Lactobacillus plantarum JM113 and consequentially altered gut microbiota in broiler chickens. | 17 | 3.2 | 4 | --- | ||
| Jazi, V et al. Br Poult Sci. (2017). 58(4):402-408 28398088 | PM | 2017.08 | Effects of fermented cottonseed meal on the growth performance, gastrointestinal microflora population and small intestinal morphology in broiler chickens. | 15 | 2.7 | 1 | --- | ||
| Schokker, Dirkjan et al. BMC Genomics. (2015). 16:418 26017153 | PM | 2015.05 | Early life microbial colonization of the gut and intestinal development differ between genetically divergent broiler lines. | 44 | 5.6 | 13 | --- | ||
| McDonald, J J; Cerniglia, C E Drug Metab Dispos. 12(3):330-6 6145560 | PM | 1984.00 | Biotransformation of gentian violet to leucogentian violet by human, rat, and chicken intestinal microflora. | 6 | 0.2 | 0 | --- | ||
| Hedman, R; Pettersson, H Arch Tierernahr. (1997). 50(4):321-9 9345596 | PM | 1997.00 | Transformation of nivalenol by gastrointestinal microbes. | 12 | 0.5 | 0 | --- | ||
| Dec, Marta et al. Animals (Basel). (2021). 11(4) 33807321 | PM | 2021.03 | Biodiversity of Ligilactobacillus salivarius Strains from Poultry and Domestic Pigeons. | 1 | 0.5 | 0 | --- | ||
| Zheng, Mingli et al. Poult Sci. (2019). 98(5):2250-2259 30496504 | PM | 2019.05 | Effects of dietary supplementation of alfalfa meal on growth performance, carcass characteristics, meat and egg quality, and intestinal microbiota in Beijing-you chicken. | 11 | 2.9 | 2 | --- | ||
| Khoobani, Mohammadreza et al. Antibiotics (Basel). (2019). 9(1) 31861921 | PM | 2019.12 | Effects of Dietary Chicory (Chicorium intybus L.) and Probiotic Blend as Natural Feed Additives on Performance Traits, Blood Biochemistry, and Gut Microbiota of Broiler Chickens. | 6 | 1.8 | 1 | --- | ||
| Laviad-Shitrit, Sivan et al. Front Microbiol. (2019). 10:1911 31481943 | PM | 2019.00 | Comparative Analysis of Intestine Microbiota of Four Wild Waterbird Species. | 6 | 1.4 | 1 | --- | ||
| Yang, Y et al. Br Poult Sci. (2008). 49(5):550-9 18836901 | PM | C | 2008.09 | Effects of mannanoligosaccharide and fructooligosaccharide on the response of broilers to pathogenic Escherichia coli challenge. | 8 | 0.6 | 2 | --- | |
| Izat, A L et al. J Food Prot. (1989). 52(9):670-673 31003285 | PM | 1989.09 | Production and Processing Studies to Reduce the Incidence of Salmonellae on Commercial Broilers 1, 2. | 1 | 0.0 | 0 | --- | ||
| Corrier, D E et al. Avian Dis. 37(1):47-52 8452509 | PM | 1993.00 | Protective effect of used poultry litter and lactose in the feed ration on Salmonella enteritidis colonization of leghorn chicks and hens. | 0 | 0.0 | 0 | --- | ||
| Manafi, M et al. Poult Sci. (2017). 96(5):1174-1183 28339520 | PM | 2017.05 | Efficacy of Bacillus subtilis and bacitracin methylene disalicylate on growth performance, digestibility, blood metabolites, immunity, and intestinal microbiota after intramuscular inoculation with Escherichia coli in broilers. | 7 | 1.2 | 3 | --- | ||
| Das, Quail et al. Front Vet Sci. (2020). 7:150 33134328 | PM | 2020.00 | Gut Microbiota, Blood Metabolites, and Spleen Immunity in Broiler Chickens Fed Berry Pomaces and Phenolic-Enriched Extractives. | 6 | 1.8 | 1 | --- | ||
| Pacifici, Sarina et al. Nutrients. (2017). 9(3) 28335485 | PM | 2017.03 | Intra Amniotic Administration of Raffinose and Stachyose Affects the Intestinal Brush Border Functionality and Alters Gut Microflora Populations. | 16 | 2.7 | 7 | --- | ||
| Yitbarek, Alexander et al. Vaccine. (2019). 37(44):6640-6647 31542262 | PM | 2019.10 | Commensal gut microbiota can modulate adaptive immune responses in chickens vaccinated with whole inactivated avian influenza virus subtype H9N2. | 10 | 2.9 | 3 | --- | ||
| Waite, David W; Taylor, Michael W Front Microbiol. (2014). 5:223 24904538 | PM | 2014.00 | Characterizing the avian gut microbiota: membership, driving influences, and potential function. | 131 | 14.2 | 47 | --- | ||
| Lin, Jun et al. Foodborne Pathog Dis. (2013). 10(4):331-7 23461609 | PM | 2013.04 | Response of intestinal microbiota to antibiotic growth promoters in chickens. | 36 | 3.6 | 10 | --- | ||
| Wang, Yuanyuan et al. Front Microbiol. (2021). 12:723187 34603247 | PM | 2021.00 | Bacillus subtilis DSM29784 Alleviates Negative Effects on Growth Performance in Broilers by Improving the Intestinal Health Under Necrotic Enteritis Challenge. | 0 | 0.0 | 0 | --- | ||
| Zhao, Fan et al. Mol Nutr Food Res. (2019). 63(23):e1900589 31588624 | PM | 2019.12 | Dietary Protein Sources Differentially Affect the Growth of Akkermansia muciniphila and Maintenance of the Gut Mucus Barrier in Mice. | 7 | 2.2 | 0 | --- | ||
| Wei, R X et al. Poult Sci. (2021). 100(3):100960 33652539 | PM | 2021.03 | Comparison of overfeeding effects on gut physiology and microbiota in two goose breeds. | 1 | 0.5 | 0 | --- | ||
| Yang, Qing et al. J Anim Sci Biotechnol. (2021). 12(1):107 34625122 | PM | 2021.10 | Perturbations of the ileal mycobiota by necrotic enteritis in broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Ilina, L A et al. Dokl Biochem Biophys. (2016). 466:47-51 27025487 | PM | 2016.00 | Metagenomic bacterial community profiles of chicken embryo gastrointestinal tract by using T-RFLP analysis. | 6 | 0.8 | 1 | --- | ||
| Khan, Samiullah et al. Appl Environ Microbiol. (2020). 86(13) 32332137 | PM | R | 2020.06 | The Gut Microbiota of Laying Hens and Its Manipulation with Prebiotics and Probiotics To Enhance Gut Health and Food Safety. | 22 | 8.0 | 7 | --- | |
| Huang, Cheng et al. Front Microbiol. (2021). 12:739577 34566941 | PM | 2021.00 | Effects of Subchronic Copper Poisoning on Cecal Histology and Its Microflora in Chickens. | 0 | 0.0 | 0 | --- | ||
| Lin, Wei Chih; Lee, Tzu Tai Animals (Basel). (2020). 10(9) 32825244 | PM | 2020.08 | Effects of Laetiporus sulphureus-Fermented Wheat Bran on Growth Performance, Intestinal Microbiota and Digesta Characteristics in Broiler Chickens. | 4 | 1.5 | 2 | --- | ||
| Duquenoy, Aurore et al. PLoS One. (2020). 15(8):e0237541 32834007 | PM | 2020.00 | Caecal microbiota compositions from 7-day-old chicks reared in high-performance and low-performance industrial farms and systematic culturomics to select strains with anti-Campylobacter activity. | 3 | 0.9 | 0 | --- | ||
| Crisol-Martínez, Eduardo et al. Appl Microbiol Biotechnol. (2017). 101(11):4547-4559 28243710 | PM | 2017.06 | Understanding the mechanisms of zinc bacitracin and avilamycin on animal production: linking gut microbiota and growth performance in chickens. | 33 | 5.7 | 16 | --- | ||
| Yan, Chao et al. Front Vet Sci. (2021). 8:706987 34660756 | PM | 2021.00 | Exogenous Fecal Microbial Transplantation Alters Fearfulness, Intestinal Morphology, and Gut Microbiota in Broilers. | 0 | 0.0 | 0 | --- | ||
| Nordentoft, Steen et al. BMC Microbiol. (2011). 11:187 21859465 | PM | 2011.08 | The influence of the cage system and colonisation of Salmonella Enteritidis on the microbial gut flora of laying hens studied by T-RFLP and 454 pyrosequencing. | 24 | 2.1 | 11 | --- | ||
| Broom, Leon J; Kogut, Michael H Anim Health Res Rev. (2018). 19(1):46-52 29704909 | PM | R | 2018.06 | Gut immunity: its development and reasons and opportunities for modulation in monogastric production animals. | 17 | 3.6 | 2 | --- | |
| Li, Cheng-Liang et al. Front Physiol. (2018). 9:1968 30705639 | PM | 2018.00 | Intestinal Morphologic and Microbiota Responses to Dietary Bacillus spp. in a Broiler Chicken Model. | 27 | 5.1 | 6 | --- | ||
| Kemmett, Kirsty et al. PLoS One. (2013). 8(6):e67749 23825682 | PM | 2013.00 | A longitudinal study simultaneously exploring the carriage of APEC virulence associated genes and the molecular epidemiology of faecal and systemic E. coli in commercial broiler chickens. | 17 | 1.7 | 0 | --- | ||
| Zhao, Fan et al. Front Microbiol. (2019). 10:2411 31708891 | PM | 2019.00 | A Short-Term Feeding of Dietary Casein Increases Abundance of Lactococcus lactis and Upregulates Gene Expression Involving Obesity Prevention in Cecum of Young Rats Compared With Dietary Chicken Protein. | 2 | 0.5 | 0 | --- | ||
| Zhu, Yingying et al. BMC Microbiol. (2016). 16(1):281 27887575 | PM | 2016.11 | The gut microbiota in young and middle-aged rats showed different responses to chicken protein in their diet. | 6 | 0.9 | 0 | --- | ||
| Pin Viso, Natalia et al. PLoS One. (2021). 16(1):e0244724 33406150 | PM | 2021.00 | Geography as non-genetic modulation factor of chicken cecal microbiota. | 1 | 0.4 | 0 | --- | ||
| Eyng, C et al. J Anim Physiol Anim Nutr (Berl). (2017). 101(3):484-492 27859763 | PM | 2017.06 | Caecal microbiota of chickens fed diets containing propolis. | 0 | 0.0 | 0 | --- | ||
| Bindari, Yugal R et al. PLoS One. (2021). 16(8):e0255633 34351989 | PM | 2021.00 | Microbial communities of poultry house dust, excreta and litter are partially representative of microbiota of chicken caecum and ileum. | 0 | 0.0 | 0 | --- | ||
| Mead, G C Vet J. (2000). 159(2):111-23 10712799 | PM | R | 2000.03 | Prospects for 'competitive exclusion' treatment to control salmonellas and other foodborne pathogens in poultry. | 0 | 0.0 | 0 | --- | |
| Kheravii, Sarbast K et al. Anim Nutr. (2018). 4(1):65-72 30167486 | PM | 2018.03 | Effect of oat hulls as a free choice feeding on broiler performance, short chain fatty acids and microflora under a mild necrotic enteritis challenge. | 10 | 2.0 | 3 | --- | ||
| Marosevic, D et al. Vet Microbiol. (2014). 171(3-4):388-96 24467930 | PM | 2014.07 | In vivo spread of macrolide-lincosamide-streptogramin B (MLSB) resistance--a model study in chickens. | 1 | 0.1 | 1 | --- | ||
| Galassi, Gianluca et al. J Insect Sci. (2021). 21(1) 33480429 | PM | 2021.01 | Impact of Agro-industrial Byproducts on Bioconversion, Chemical Composition, in vitro Digestibility, and Microbiota of the Black Soldier Fly (Diptera: Stratiomyidae) Larvae. | 3 | 1.4 | 0 | --- | ||
| Surai, Peter F et al. Nanoscale Res Lett. (2017). 12(1):612 29204909 | PM | 2017.12 | Nano-Se Assimilation and Action in Poultry and Other Monogastric Animals: Is Gut Microbiota an Answer? | 3 | 0.6 | 0 | --- | ||
| Castañeda, Claudia D et al. Poult Sci. (2019). 98(7):2997-3006 30789222 | PM | 2019.07 | Evaluating bacterial colonization of a developing broiler embryo after in ovo injection with a bioluminescent bacteria. | 3 | 0.8 | 1 | --- | ||
| Carey, Christine M et al. Can J Microbiol. (2007). 53(5):537-50 17668012 | PM | R | 2007.05 | Current and future uses of real-time polymerase chain reaction and microarrays in the study of intestinal microbiota, and probiotic use and effectiveness. | 8 | 0.5 | 0 | --- | |
| Hinton, Arthur et al. J Food Prot. (1992). 55(6):419-423 31071856 | PM | 1992.06 | Inhibition of the Growth of Salmonella typhimurium and Escherichia coli O157:H7 on Chicken Feed Media by Bacteria Isolated from the Intestinal Microflora of Chickens. | 0 | 0.0 | 0 | --- | ||
| Tresse, Odile et al. Front Microbiol. (2017). 8:1908 29067004 | PM | 2017.00 | Editorial: About the Foodborne Pathogen Campylobacter. | 16 | 2.6 | 0 | --- | ||
| Jeong, Yujeong et al. J Microbiol Biotechnol. (2020). 30(9):1321-1334 32522966 | PM | 2020.09 | Changes in Gut Microbial Community of Pig Feces in Response to Different Dietary Animal Protein Media. | 1 | 0.4 | 0 | --- | ||
| Lund, M et al. Poult Sci. (2010). 89(6):1217-24 20460669 | PM | 2010.06 | Quantification of Faecalibacterium prausnitzii- and Subdoligranulum variabile-like bacteria in the cecum of chickens by real-time PCR. | 19 | 1.5 | 3 | --- | ||
| Borda-Molina, Daniel et al. Life (Basel). (2021). 11(3) 33809351 | PM | 2021.03 | Gut Microbial Composition and Predicted Functions Are Not Associated with Feather Pecking and Antagonistic Behavior in Laying Hens. | 1 | 0.5 | 0 | --- | ||
| Kempf, Florent et al. Microb Biotechnol. (2020). 13(5):1611-1630 32639676 | PM | 2020.09 | Gut microbiota composition before infection determines the Salmonella super- and low-shedder phenotypes in chicken. | 4 | 1.6 | 1 | --- | ||
| Yitbarek, Alexander et al. FEMS Microbiol Ecol. (2018). 94(1) 29228270 | PM | 2018.01 | Influenza A virus subtype H9N2 infection disrupts the composition of intestinal microbiota of chickens. | 19 | 3.7 | 5 | --- | ||
| Mourand, Gwenaëlle et al. J Med Microbiol. (2014). 63(Pt 11):1552-1560 25142966 | PM | 2014.11 | Experimental study of the impact of antimicrobial treatments on Campylobacter, Enterococcus and PCR-capillary electrophoresis single-strand conformation polymorphism profiles of the gut microbiota of chickens. | 2 | 0.2 | 1 | --- | ||
| Torok, Valeria A et al. Appl Environ Microbiol. (2011). 77(10):3380-90 21441326 | PM | 2011.05 | Influence of antimicrobial feed additives on broiler commensal posthatch gut microbiota development and performance. | 46 | 3.9 | 18 | --- | ||
| Lee, MiJin et al. J Anim Physiol Anim Nutr (Berl). (2021). 105(5):952-959 32772452 | PM | 2021.09 | Impact of an anti-Salmonella. Typhimurium Bacteriophage on intestinal microbiota and immunity status of laying hens. | 1 | 0.7 | 0 | --- | ||
| Owens, B et al. Br Poult Sci. (2008). 49(2):202-12 18409095 | PM | 2008.03 | Effects of different feed additives alone or in combination on broiler performance, gut microflora and ileal histology. | 15 | 1.0 | 3 | --- | ||
29579092 | PM | .-- | 9 | 0.0 | 3 | --- | |||
| Cheng, Lei et al. Poult Sci. (2021). 100(3):100925 33518323 | PM | 2021.03 | The effects of dietary supplementation with lotus leaf extract on the immune response and intestinal microbiota composition of broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Sylte, M J et al. Poult Sci. (2017). 96(7):2412-2420 28204763 | PM | 2017.07 | Evaluation of disinfectants and antiseptics to eliminate bacteria from the surface of turkey eggs and hatch gnotobiotic poults. | 6 | 1.1 | 3 | --- | ||
| Zhong, Gaolong et al. Sci Total Environ. (2021). 788:147780 34022569 | PM | 2021.09 | Arsenic exposure induces intestinal barrier damage and consequent activation of gut-liver axis leading to inflammation and pyroptosis of liver in ducks. | 1 | 0.7 | 0 | --- | ||
| Li, Shuo et al. Poult Sci. (2020). 99(10):5074-5078 32988545 | PM | 2020.10 | Research Note: Increase of bad bacteria and decrease of good bacteria in the gut of layers with vs. without hepatic steatosis. | 2 | 0.8 | 1 | --- | ||
| Zhou, Yang et al. Front Microbiol. (2020). 11:1319 32733394 | PM | 2020.00 | Antibiotic Administration Routes and Oral Exposure to Antibiotic Resistant Bacteria as Key Drivers for Gut Microbiota Disruption and Resistome in Poultry. | 6 | 1.8 | 0 | --- | ||
| Siwek, M et al. BMC Vet Res. (2018). 14(1):402 30558599 | PM | R | 2018.12 | Prebiotics and synbiotics - in ovo delivery for improved lifespan condition in chicken. | 29 | 6.8 | 9 | --- | |
| Yan, Chao et al. Animals (Basel). (2021). 11(1) 33440656 | PM | 2021.01 | Feed Restriction Induced Changes in Behavior, Corticosterone, and Microbial Programming in Slow- and Fast-Growing Chicken Breeds. | 1 | 0.5 | 1 | --- | ||
| Stavric, S Int J Food Microbiol. 15(3-4):245-63 1419530 | PM | R | 1992.00 | Defined cultures and prospects. | 10 | 0.3 | 2 | --- | |
| Zhu, Nianhua et al. Front Microbiol. (2019). 10:1333 31275268 | PM | 2019.00 | Modulation of Growth Performance and Intestinal Microbiota in Chickens Fed Plant Extracts or Virginiamycin. | 12 | 2.8 | 5 | --- | ||
| Oladokun, Samson et al. Poult Sci. (2021). 100(3):100809 33518343 | PM | 2021.03 | Bacillus subtilis delivery route: effect on growth performance, intestinal morphology, cecal short-chain fatty acid concentration, and cecal microbiota in broiler chickens. | 8 | 4.0 | 4 | --- | ||
| Figueroa, Thomas et al. J Virol. (2020). 94(10) 32102887 | PM | 2020.05 | The Microbiota Contributes to the Control of Highly Pathogenic H5N9 Influenza Virus Replication in Ducks. | 4 | 1.4 | 0 | --- | ||
| Ozen, Seza et al. Clin Exp Rheumatol. 39 Suppl 132(5):102-108 34251310 | PM | 2021.00 | Microbiome is not linked to clinical disease severity of familial Mediterranean fever in an international cohort of children. | 0 | 0.0 | 0 | --- | ||
| Beirão, Breno C B et al. Avian Pathol. (2018). 47(3):325-333 29534604 | PM | 2018.06 | Effect of an Enterococcus faecium probiotic on specific IgA following live Salmonella Enteritidis vaccination of layer chickens. | 11 | 2.3 | 1 | --- | ||
| Adedokun, Sunday A; Olojede, Opeyemi C Front Vet Sci. (2018). 5:348 30766877 | PM | R | 2018.00 | Optimizing Gastrointestinal Integrity in Poultry: The Role of Nutrients and Feed Additives. | 10 | 1.9 | 1 | --- | |
| Choi, Ki Young et al. Asian-Australas J Anim Sci. (2015). 28(9):1217-25 26323514 | PM | 2015.09 | Metagenomic Analysis of Chicken Gut Microbiota for Improving Metabolism and Health of Chickens - A Review. | 31 | 4.1 | 16 | --- | ||
| Sun, Cheng-He et al. Microbiologyopen. (2018):e786 30592177 | PM | 2018.12 | Comparative analysis of the gut microbiota of hornbill and toucan in captivity. | 5 | 1.2 | 1 | --- | ||
| Videnska, Petra et al. BMC Vet Res. (2013). 9:140 23856245 | PM | 2013.07 | Influence of Salmonella enterica serovar Enteritidis infection on the composition of chicken cecal microbiota. | 45 | 4.7 | 17 | --- | ||
| Zhu, Yingying et al. Front Microbiol. (2017). 8:1395 28798733 | PM | 2017.00 | Beef, Chicken, and Soy Proteins in Diets Induce Different Gut Microbiota and Metabolites in Rats. | 18 | 2.9 | 3 | --- | ||
| Kohl, Kevin D et al. FEMS Microbiol Lett. (2016). 363(14) 27242374 | PM | 2016.07 | Microbial detoxification in the gut of a specialist avian herbivore, the Greater Sage-Grouse. | 17 | 2.5 | 1 | --- | ||
| Abolfathi, Mirza-Ebrahim et al. Arch Anim Nutr. (2019). 73(2):88-110 30821191 | PM | C | 2019.04 | Comparative effects of n-hexane and methanol extracts of elecampane (Inula helenium L.) rhizome on growth performance, carcass traits, feed digestibility, intestinal antioxidant status and ileal microbiota in broiler chickens. | 2 | 0.5 | 0 | --- | |
| Wang, X J et al. Poult Sci. (2018). 97(6):2153-2158 29562351 | PM | 2018.06 | Effects of high ambient temperature on the community structure and composition of ileal microbiome of broilers. | 17 | 3.6 | 6 | --- | ||
| Deng, Ziteng et al. Poult Sci. (2021). 100(8):101283 34229217 | PM | 2021.08 | Lactobacillus casei protects intestinal mucosa from damage in chicks caused by Salmonella pullorum via regulating immunity and the Wnt signaling pathway and maintaining the abundance of gut microbiota. | 0 | 0.0 | 0 | --- | ||
| Miller, Elizabeth A et al. J Anim Sci Biotechnol. (2021). 12(1):59 33947458 | PM | 2021.05 | Convergence of the turkey gut microbiota following cohabitation under commercial settings. | 0 | 0.0 | 0 | --- | ||
| Lee, In Kyu et al. Sci Rep. (2018). 8(1):8627 29872084 | PM | 2018.06 | Regulation of CD4+CD8-CD25+ and CD4+CD8+CD25+ T cells by gut microbiota in chicken. | 10 | 2.1 | 1 | --- | ||
| Yin, Dafei et al. J Anim Sci Biotechnol. (2018). 9:24 29545946 | PM | 2018.00 | Supplementation of amylase combined with glucoamylase or protease changes intestinal microbiota diversity and benefits for broilers fed a diet of newly harvested corn. | 12 | 2.3 | 4 | --- | ||
| Fernandez, F et al. Avian Pathol. (2002). 31(1):49-58 12425792 | PM | C | 2002.02 | Dietary mannan-oligosaccharides and their effect on chicken caecal microflora in relation to Salmonella Enteritidis colonization. | 27 | 1.3 | 4 | --- | |
| Singh, K M et al. J Appl Genet. (2014). 55(1):145-54 24136777 | PM | 2014.02 | Taxonomic and gene-centric metagenomics of the fecal microbiome of low and high feed conversion ratio (FCR) broilers. | 36 | 4.0 | 7 | --- | ||
| Guo, Danjun et al. Mol Nutr Food Res. (2019). 63(24):e1900525 31671239 | PM | 2019.12 | Duck Egg White-Derived Peptide VSEE (Val-Ser-Glu-Glu) Regulates Bone and Lipid Metabolisms by Wnt/β-Catenin Signaling Pathway and Intestinal Microbiota. | 3 | 0.9 | 0 | --- | ||
| Guerrini, Matteo M et al. Immunity. (2018). 48(4):628-631 29669247 | PM | 2018.04 | A Hen in the Wolf Den: A Pathobiont Tale. | 2 | 0.4 | 0 | --- | ||
| Shi, Hong-Tao et al. AMB Express. (2020). 10(1):159 32869156 | PM | 2020.08 | Fermented Astragalus in diet improved laying performance, egg quality, antioxidant and immunological status and intestinal microbiota in laying hens. | 1 | 0.4 | 0 | --- | ||
| Boukerb, Amine M et al. Front Microbiol. (2021). 12:697553 34335529 | PM | 2021.00 | Comparative Analysis of Fecal Microbiomes From Wild Waterbirds to Poultry, Cattle, Pigs, and Wastewater Treatment Plants for a Microbial Source Tracking Approach. | 0 | 0.0 | 0 | --- | ||
| Baldwin, Stephen et al. PLoS One. (2018). 13(3):e0194825 29570728 | PM | 2018.00 | At-hatch administration of probiotic to chickens can introduce beneficial changes in gut microbiota. | 26 | 5.0 | 9 | --- | ||
| Liu, Gang et al. Microbiologyopen. (2020). 9(7):e1037 32207252 | PM | 2020.07 | Variations in gut bacterial communities between lesser white-fronted geese wintering at Caizi and Shengjin lakes in China. | 1 | 0.4 | 0 | --- | ||
| Singh, Pallavi et al. Poult Sci. (2013). 92(1):272-6 23243258 | PM | C | 2013.01 | Influence of penicillin on microbial diversity of the cecal microbiota in broiler chickens. | 35 | 3.4 | 14 | --- | |
| Paraskeuas, Vasileios; Mountzouris, Konstantinos C Anim Nutr. (2019). 5(1):22-31 30899806 | PM | 2019.03 | Broiler gut microbiota and expressions of gut barrier genes affected by cereal type and phytogenic inclusion. | 8 | 2.0 | 3 | --- | ||
| Yu, Miao et al. Front Microbiol. (2019). 10:2662 31849855 | PM | 2019.00 | Dietary Supplementation With Citrus Extract Altered the Intestinal Microbiota and Microbial Metabolite Profiles and Enhanced the Mucosal Immune Homeostasis in Yellow-Feathered Broilers. | 8 | 1.9 | 2 | --- | ||
| Khan, Samiullah; Chousalkar, Kapil K J Anim Sci Biotechnol. (2020). 11:29 32211190 | PM | 2020.00 | Salmonella Typhimurium infection disrupts but continuous feeding of Bacillus based probiotic restores gut microbiota in infected hens. | 18 | 5.5 | 5 | --- | ||
| Wang, Hesong et al. Front Microbiol. (2017). 8:1073 28659893 | PM | 2017.00 | Live Probiotic Lactobacillus johnsonii BS15 Promotes Growth Performance and Lowers Fat Deposition by Improving Lipid Metabolism, Intestinal Development, and Gut Microflora in Broilers. | 43 | 6.9 | 11 | --- | ||
| Yang, Qing et al. Front Microbiol. (2021). 12:703693 34489892 | PM | 2021.00 | Identification of an Intestinal Microbiota Signature Associated With the Severity of Necrotic Enteritis. | 1 | 0.4 | 0 | --- | ||
| Kogut, Michael H et al. Poult Sci. (2020). 99(4):1906-1913 32241470 | PM | R | 2020.04 | Microbiome and pathogen interaction with the immune system. | 14 | 4.8 | 0 | --- | |
| Bjerrum, L et al. Avian Dis. (2005). 49(1):9-15 15839406 | PM | 2005.03 | The influence of whole wheat feeding on Salmonella infection and gut flora composition in broilers. | 15 | 0.8 | 1 | --- | ||
| Ni, Yinhua et al. Acta Biochim Biophys Sin (Shanghai). (2021). 53(4):419-429 33637986 | PM | 2021.03 | Neuroprotective effects of ProBeptigen/CMI-168 on aging-induced cognitive decline and neuroinflammation in mice: a comparison with essence of chicken. | 0 | 0.0 | 0 | --- | ||
| Sun, Xiaolun; Jia, Zhenquan Vet Immunol Immunopathol. (2018). 205:97-105 30459007 | PM | R | 2018.11 | Microbiome modulates intestinal homeostasis against inflammatory diseases. | 12 | 2.8 | 2 | --- | |
| Zhang, Jiachao et al. Poult Sci. (2020). 99(10):4776-4785 32988512 | PM | 2020.10 | In ovo supplementation of chitooligosaccharide and chlorella polysaccharide affects cecal microbial community, metabolic pathways, and fermentation metabolites in broiler chickens. | 12 | 5.0 | 1 | --- | ||
| Benskin, Clare McW H et al. Mol Ecol. (2010). 19(24):5531-44 21054607 | PM | 2010.12 | Diversity and temporal stability of bacterial communities in a model passerine bird, the zebra finch. | 22 | 1.8 | 6 | --- | ||
| Xie, Z L et al. Genet Mol Res. (2015). 14(4):12262-75 26505375 | PM | 2015.10 | Intestinal lactic acid bacteria from Muscovy duck as potential probiotics that alter adhesion factor gene expression. | 2 | 0.3 | 0 | --- | ||
| Dias, Desirrê Morais et al. Nutrients. (2018). 10(12) 30551574 | PM | 2018.12 | Iron Biofortified Carioca Bean (Phaseolus vulgaris L.)-Based Brazilian Diet Delivers More Absorbable Iron and Affects the Gut Microbiota In Vivo (Gallus gallus). | 13 | 3.1 | 4 | --- | ||
| Lan, Dan et al. Biomed Res Int. (2020). 2020:6416451 33102586 | PM | 2020.00 | Research on the Effect of Pediococcus pentosaceus on Salmonella enteritidis-Infected Chicken. | 2 | 0.6 | 0 | --- | ||
| Stanley, Dragana et al. Vet Microbiol. (2013). 164(1-2):85-92 23434185 | PM | 2013.05 | Identification of chicken intestinal microbiota correlated with the efficiency of energy extraction from feed. | 61 | 6.2 | 25 | --- | ||
| Maki, Joel J et al. Microorganisms. (2019). 7(10) 31547217 | PM | R | 2019.09 | The Microbial Pecking Order: Utilization of Intestinal Microbiota for Poultry Health. | 13 | 3.7 | 7 | --- | |
| Tellez, Guillermo et al. PLoS One. (2015). 10(4):e0122390 25849537 | PM | 2015.00 | Rye affects bacterial translocation, intestinal viscosity, microbiota composition and bone mineralization in Turkey poults. | 22 | 2.7 | 2 | --- | ||
| Hankel, Julia et al. Front Microbiol. (2019). 10:2303 31649644 | PM | 2019.00 | Caecal Microbiota of Experimentally Campylobacter jejuni-Infected Chickens at Different Ages. | 7 | 1.6 | 1 | --- | ||
| Gong, Li et al. Front Immunol. (2020). 11:628374 33679724 | PM | 2020.00 | Protective Effects of Lactobacillus plantarum 16 and Paenibacillus polymyxa 10 Against Clostridium perfringens Infection in Broilers. | 3 | 0.9 | 0 | --- | ||
| Parsons, C M et al. Poult Sci. (1983). 62(3):483-9 6302653 | PM | 1983.03 | Effects of dietary carbohydrate and of intestinal microflora on excretion of endogenous amino acids by poultry. | 12 | 0.3 | 1 | --- | ||
| Luoma, A et al. Poult Sci. (2017). 96(12):4208-4216 29053828 | PM | 2017.12 | Effect of synbiotic supplementation on layer production and cecal Salmonella load during a Salmonella challenge. | 7 | 1.3 | 3 | --- | ||
| Wu, Shengru et al. J Anim Sci Biotechnol. (2020). 11:73 32647570 | PM | 2020.00 | Changes in the gut microbiota mediate the differential regulatory effects of two glucose oxidases produced by Aspergillus niger and Penicillium amagasakiense on the meat quality and growth performance of broilers. | 1 | 0.3 | 0 | --- | ||
| Kang, H K et al. J Anim Physiol Anim Nutr (Berl). (2017). 101(2):208-214 27859673 | PM | C | 2017.04 | Effects of dietary supplementation with a chlorella by-product on the growth performance, immune response, intestinal microflora and intestinal mucosal morphology in broiler chickens. | 2 | 0.3 | 0 | --- | |
| Zhang, W F et al. Poult Sci. (2003). 82(4):657-63 12710488 | PM | 2003.04 | Effects of isomalto-oligosaccharides on broiler performance and intestinal microflora. | 7 | 0.4 | 1 | --- | ||
| Forouzandeh, A et al. Poult Sci. (2021). 100(8):101224 34157560 | PM | 2021.08 | Effects of dicopper oxide and copper sulfate on growth performance and gut microbiota in broilers. | 0 | 0.0 | 0 | --- | ||
| Afonyushkin, V N et al. Bull Exp Biol Med. (2016). 161(6):801-803 27783299 | PM | 2016.10 | Antagonistic Activity of Intestinal Lactobacteria from Domestic Fowl against Clinical Isolates of Salmonella enterica. | 0 | 0.0 | 0 | --- | ||
| Coates, M E et al. Br Poult Sci. (1981). 22(3):289-94 7260707 | PM | 1981.05 | The gut microflora and the uptake of glucose from the small intestine of the chick. | 1 | 0.0 | 1 | --- | ||
| Aho, M Int J Food Microbiol. 15(3-4):225-35 1419527 | PM | 1992.00 | Problems of Salmonella sampling. | 4 | 0.1 | 0 | --- | ||
| De Maesschalck, Celine et al. Poult Sci. (2019). 98(9):3811-3817 31065709 | PM | 2019.09 | Amorphous cellulose feed supplement alters the broiler caecal microbiome. | 6 | 1.7 | 2 | --- | ||
| Samli, Hasan Ersin et al. Arch Anim Nutr. (2007). 61(1):42-9 17361947 | PM | 2007.02 | Effects of Enterococcus faecium and dried whey on broiler performance, gut histomorphology and intestinal microbiota. | 23 | 1.4 | 7 | --- | ||
| Yang, Wen-Yuan et al. PLoS One. (2019). 14(5):e0205784 31150394 | PM | C | 2019.00 | Analysis of gut microbiota and the effect of lauric acid against necrotic enteritis in Clostridium perfringens and Eimeria side-by-side challenge model. | 26 | 6.1 | 11 | --- | |
| Metzler-Zebeli, Barbara U et al. Front Microbiol. (2019). 10:1576 31354670 | PM | 2019.00 | Fecal Microbiota Transplant From Highly Feed Efficient Donors Affects Cecal Physiology and Microbiota in Low- and High-Feed Efficient Chickens. | 9 | 2.1 | 2 | --- | ||
| Liu, Yang et al. Front Microbiol. (2021). 12:698213 34326826 | PM | 2021.00 | Effects of Dietary Ferulic Acid on the Intestinal Microbiota and the Associated Changes on the Growth Performance, Serum Cytokine Profile, and Intestinal Morphology in Ducks. | 0 | 0.0 | 0 | --- | ||
| Mon, Khin K Z et al. Sci Rep. (2020). 10(1):4809 32179754 | PM | 2020.03 | Integrative analysis of gut microbiome and metabolites revealed novel mechanisms of intestinal Salmonella carriage in chicken. | 6 | 2.0 | 3 | --- | ||
| Sottas, Camille et al. BMC Ecol Evol. (2021). 21(1):41 33691625 | PM | 2021.03 | Gut microbiota in two recently diverged passerine species: evaluating the effects of species identity, habitat use and geographic distance. | 0 | 0.0 | 0 | --- | ||
| Calik, Ali; Ergün, Ahmet Poult Sci. (2015). 94(9):2173-82 26188035 | PM | 2015.09 | Effect of lactulose supplementation on growth performance, intestinal histomorphology, cecal microbial population, and short-chain fatty acid composition of broiler chickens. | 15 | 2.0 | 3 | --- | ||
| Yang, H et al. Poult Sci. (2018). 97(4):1420-1428 29365165 | PM | 2018.04 | Microbial community and short-chain fatty acid profile in gastrointestinal tract of goose. | 12 | 2.4 | 2 | --- | ||
| Saeed, Muhammad et al. Environ Sci Pollut Res Int. (2018). 25(35):35027-35033 30368697 | PM | 2018.12 | Yucca schidigera can mitigate ammonia emissions from manure and promote poultry health and production. | 4 | 0.9 | 0 | --- | ||
| Li, Chao et al. Appl Microbiol Biotechnol. (2021). 105(14-15):5993-6005 34272578 | PM | 2021.08 | Diet-induced microbiome shifts of sympatric overwintering birds. | 0 | 0.0 | 0 | --- | ||
| Waite, David W et al. Appl Environ Microbiol. (2014). 80(15):4650-8 24837385 | PM | 2014.08 | Influence of hand rearing and bird age on the fecal microbiota of the critically endangered kakapo. | 17 | 2.0 | 4 | --- | ||
| Yan, Wei et al. Front Microbiol. (2019). 10:2126 31572332 | PM | 2019.00 | Efficacy of Fecal Sampling as a Gut Proxy in the Study of Chicken Gut Microbiota. | 25 | 5.9 | 7 | --- | ||
| Tang, Yue et al. Appl Environ Microbiol. (2014). 80(2):478-85 24212578 | PM | 2014.01 | Metaproteomics analysis reveals the adaptation process for the chicken gut microbiota. | 22 | 2.4 | 5 | --- | ||
| Yang, Lingyu et al. Front Microbiol. (2017). 8:1243 28725219 | PM | 2017.00 | Gut Microbiota Co-microevolution with Selection for Host Humoral Immunity. | 17 | 2.7 | 6 | --- | ||
| Sheng, Q K et al. Asian-Australas J Anim Sci. (2013). 26(9):1313-9 25049914 | PM | 2013.09 | Effects of Low Level Water-soluble Pentosans, Alkaline-extractable Pentosans, and Xylanase on the Growth and Development of Broiler Chicks. | 0 | 0.0 | 0 | --- | ||
| Ding, Jing et al. Environ Int. (2019). 124:145-152 30641258 | PM | 2019.03 | Long-term application of organic fertilization causes the accumulation of antibiotic resistome in earthworm gut microbiota. | 5 | 1.2 | 0 | --- | ||
| Rodrigues, Denise R et al. Front Microbiol. (2019). 10:2858 31998246 | PM | 2019.00 | Intestinal Pioneer Colonizers as Drivers of Ileal Microbial Composition and Diversity of Broiler Chickens. | 11 | 2.6 | 3 | --- | ||
| Wang, Hong L et al. J Poult Sci. (2016). 53(2):128-135 32908375 | PM | 2016.04 | Effects of Flavomycin, Bacillus licheniformis and Enramycin on Performance, Nutrient Digestibility, Gut Morphology and the Intestinal Microflora of Broilers. | 0 | 0.0 | 0 | --- | ||
| Volf, Jiri et al. Vet Res. (2017). 48(1):85 29202873 | PM | 2017.12 | Gene expression in the chicken caecum is dependent on microbiota composition. | 7 | 1.3 | 2 | --- | ||
| Li, Hongxin et al. Viruses. (2018). 10(5) 29783653 | PM | 2018.05 | Avian Influenza Virus Subtype H9N2 Affects Intestinal Microbiota, Barrier Structure Injury, and Inflammatory Intestinal Disease in the Chicken Ileum. | 22 | 4.6 | 4 | --- | ||
| Singh, Amit Kumar; Kim, Woo Kyun Animals (Basel). (2021). 11(1) 33466662 | PM | R | 2021.01 | Effects of Dietary Fiber on Nutrients Utilization and Gut Health of Poultry: A Review of Challenges and Opportunities. | 3 | 1.4 | 0 | --- | |
| Nardoia, M et al. Animal. (2020). 14(7):1371-1381 31854283 | PM | 2020.07 | Addition of fermented and unfermented grape skin in broilers' diets: effect on digestion, growth performance, intestinal microbiota and oxidative stability of meat. | 6 | 2.2 | 1 | --- | ||
| Röhe, Ilen; Zentek, Jürgen J Anim Sci Biotechnol. (2021). 12(1):82 34140038 | PM | R | 2021.06 | Lignocellulose as an insoluble fiber source in poultry nutrition: a review. | 1 | 0.6 | 0 | --- | |
| Xia, M S et al. Poult Sci. (2004). 83(11):1868-75 15554064 | PM | C | 2004.11 | Effects of copper-bearing montmorillonite on growth performance, digestive enzyme activities, and intestinal microflora and morphology of male broilers. | 22 | 1.2 | 3 | --- | |
| Zhu, Ying et al. Front Microbiol. (2021). 12:723682 34434183 | PM | 2021.00 | Establishment of Gut Microbiome During Early Life and Its Relationship With Growth in Endangered Crested Ibis (Nipponia nippon). | 0 | 0.0 | 0 | --- | ||
| Carboni, Johnathon et al. Nutrients. (2020). 12(10) 33023112 | PM | 2020.10 | Alterations in the Intestinal Morphology, Gut Microbiota, and Trace Mineral Status Following Intra-Amniotic Administration (Gallus gallus) of Teff (Eragrostis tef) Seed Extracts. | 3 | 1.2 | 1 | --- | ||
| Nordstrom, Lora et al. Front Microbiol. (2013). 4:29 23508293 | PM | 2013.00 | Foodborne urinary tract infections: a new paradigm for antimicrobial-resistant foodborne illness. | 37 | 3.6 | 0 | --- | ||
| Kürekci, Cemil et al. J Anim Physiol Anim Nutr (Berl). (2021). 105(5):927-937 32969077 | PM | C | 2021.09 | Effect of essential oil supplementation to diet on meat quality, fatty acid composition, performance parameters and intestinal microbiota of Japanese quails. | 0 | 0.0 | 0 | --- | |
| Elokil, A A et al. Animal. (2020). 14(4):706-715 31619307 | PM | 2020.04 | Faecal microbiome sequences in relation to the egg-laying performance of hens using amplicon-based metagenomic association analysis. | 9 | 3.1 | 3 | --- | ||
| Wu, Yuqin et al. Anim Sci J. 91(1):e13409 32524726 | PM | 2020.00 | Effect of 2-hydroxy-4-(methylthio) butanoic acid and acidifier on the performance, chyme pH, and microbiota of broilers. | 3 | 0.9 | 1 | --- | ||
| Ruan, Dong et al. J Anim Sci. (2021). 99(2) 33544855 | PM | C | 2021.02 | Effects of dietary oregano essential oil supplementation on growth performance, intestinal antioxidative capacity, immunity, and intestinal microbiota in yellow-feathered chickens. | 0 | 0.0 | 0 | --- | |
| Movahhedkhah, Sajjad et al. Animals (Basel). (2019). 9(3) 30862054 | PM | 2019.03 | Summer Savory (Satureja hortensis L.) Extract as Natural Feed Additive in Broilers: Effects on Growth, Plasma Constituents, Immune Response, and Ileal Microflora. | 9 | 2.2 | 1 | --- | ||
| Borda-Molina, Daniel et al. Animals (Basel). (2020). 10(5) 32438715 | PM | 2020.05 | Effects on the Ileal Microbiota of Phosphorus and Calcium Utilization, Bird Performance, and Gender in Japanese Quail. | 7 | 2.5 | 5 | --- | ||
| Qiao, Hongxing et al. AMB Express. (2018). 8(1):151 30255211 | PM | 2018.09 | Fermented Astragalus in diet altered the composition of fecal microbiota in broiler chickens. | 4 | 0.9 | 1 | --- | ||
| Cox, C M; Dalloul, R A Benef Microbes. (2015). 6(1):45-52 25213028 | PM | R | 2015.03 | Immunomodulatory role of probiotics in poultry and potential in ovo application. | 18 | 2.2 | 4 | --- | |
| Gajewska, Julitta et al. Acta Microbiol Pol. (2002). 51(1):71-8 12184451 | PM | 2002.00 | Effect of addition of "Greenline" preparations to feed mixtures for broilers on the composition of their intestinal microflora. | 0 | 0.0 | 0 | --- | ||
| Wu, Hong et al. Front Microbiol. (2021). 12:649466 33841373 | PM | 2021.00 | Comparative Analysis of Gut Microbiota in Captive and Wild Oriental White Storks: Implications for Conservation Biology. | 0 | 0.0 | 0 | --- | ||
| Chou, Han-Hsuan et al. Proc Natl Acad Sci U S A. (2015). 112(7):2175-80 25646429 | PM | 2015.02 | Age-related immune clearance of hepatitis B virus infection requires the establishment of gut microbiota. | 68 | 8.4 | 0 | --- | ||
| Kmet, V; Piatnicová, E Folia Microbiol (Praha). (2010). 55(4):332-5 20680565 | PM | 2010.07 | Antibiotic resistance in commensal intestinal microflora. | 3 | 0.2 | 0 | --- | ||
| Li, Aoyun et al. Chemosphere. (2021). 277:130222 33794430 | PM | 2021.08 | Environmental fluoride exposure disrupts the intestinal structure and gut microbial composition in ducks. | 1 | 0.6 | 0 | --- | ||
| Soerjadi, A S et al. Avian Dis. 26(3):520-4 7150145 | PM | 1982.00 | Intestinal colonization and competitive exclusion of Campylobacter fetus subsp. jejuni in young chicks. | 11 | 0.3 | 1 | --- | ||
| McCabe, Laura et al. Curr Osteoporos Rep. (2015). 13(6):363-71 26419466 | PM | R | 2015.12 | Prebiotic and Probiotic Regulation of Bone Health: Role of the Intestine and its Microbiome. | 64 | 8.8 | 1 | --- | |
| Liu, Yanhan et al. Animals (Basel). (2021). 11(9) 34573480 | PM | 2021.08 | Effect of Dietary Clostridium butyricum Supplementation on Growth Performance, Intestinal Barrier Function, Immune Function, and Microbiota Diversity of Pekin Ducks. | 0 | 0.0 | 0 | --- | ||
| Weinack, O M et al. Avian Dis. 29(4):1230-4 3914276 | PM | C | 1985.00 | Therapeutic trials with native intestinal microflora for Salmonella typhimurium infections in chickens. | 1 | 0.0 | 0 | --- | |
| Liu, Haoyu et al. J Anim Sci Biotechnol. (2013). 4(1):50 24341997 | PM | 2013.12 | Chicory (Cichorium intybus L.) and cereals differently affect gut development in broiler chickens and young pigs. | 3 | 0.3 | 0 | --- | ||
| Joat, Nitish Narendra et al. J Anim Sci Biotechnol. (2021). 12(1):78 34090517 | PM | 2021.06 | Understanding the effects of intramuscular injection and feed withdrawal on Salmonella Typhimurium shedding and gut microbiota in pullets. | 1 | 0.6 | 1 | --- | ||
| Sun, Baosheng et al. Front Vet Sci. (2021). 8:668003 34589531 | PM | 2021.00 | Effects of Adding Eubiotic Lignocellulose on the Growth Performance, Laying Performance, Gut Microbiota, and Short-Chain Fatty Acids of Two Breeds of Hens. | 0 | 0.0 | 0 | --- | ||
| Skeen, Heather R et al. Mol Ecol. (2021). 30(22):5900-5916 34580952 | PM | 2021.11 | Repeated sampling of individuals reveals impact of tropical and temperate habitats on microbiota of a migratory bird. | 0 | 0.0 | 0 | --- | ||
| Knutie, Sarah A; Gotanda, Kiyoko M Microb Ecol. (2018). 76(4):851-855 29623358 | PM | 2018.11 | A Non-invasive Method to Collect Fecal Samples from Wild Birds for Microbiome Studies. | 9 | 2.1 | 2 | --- | ||
| Ducatelle, Richard et al. Vet Res. (2018). 49(1):43 29739469 | PM | R | 2018.05 | Biomarkers for monitoring intestinal health in poultry: present status and future perspectives. | 49 | 10.1 | 10 | --- | |
| Xiao, Xingning et al. Antibiotics (Basel). (2021). 10(7) 34356746 | PM | 2021.07 | Modulation of the Intestinal Microbiota by the Early Intervention with Clostridium Butyricum in Muscovy Ducks. | 0 | 0.0 | 0 | --- | ||
| Cengiz, Özcan et al. Poult Sci. (2015). 94(10):2395-403 26240393 | PM | 2015.10 | Effect of dietary probiotic and high stocking density on the performance, carcass yield, gut microflora, and stress indicators of broilers. | 16 | 2.2 | 4 | --- | ||
| Caldwell, D Y et al. J Agric Food Chem. (2000). 48(12):6431-4 11141298 | PM | 2000.12 | Development of a rapid and inexpensive assay for the nonspecific detection of antimicrobial residues in chicken egg yolks and neonatal yolk sacs. | 0 | 0.0 | 0 | --- | ||
| Muturi, Ephantus J et al. FEMS Microbiol Ecol. (2019). 95(1) 30357406 | PM | 2019.01 | Host blood-meal source has a strong impact on gut microbiota of Aedes aegypti. | 29 | 7.0 | 1 | --- | ||
| Ekim, Burcu et al. Poult Sci. (2019) 31420669 | PM | 2019.08 | Effects of Paenibacillus xylanexedens on growth performance, intestinal histomorphology, intestinal microflora, and immune response in broiler chickens challenged with Escherichia coli K88. | 0 | 0.0 | 0 | --- | ||
| Mora-Sánchez, Brenda et al. Microb Pathog. (2020). 145:104210 32315754 | PM | 2020.08 | Phylogenetic analysis of intestinal microbiota reveals novel Mycoplasma phylotypes in salmonid species. | 0 | 0.0 | 0 | --- | ||
| Li, Zhui et al. PLoS One. (2017). 12(11):e0188634 29190649 | PM | 2017.00 | Effects of Lactobacillus acidophilus on gut microbiota composition in broilers challenged with Clostridium perfringens. | 24 | 3.8 | 14 | --- | ||
| Noguera, José C et al. R Soc Open Sci. (2018). 5(4):171743 29765642 | PM | 2018.04 | Glucocorticoids modulate gastrointestinal microbiome in a wild bird. | 23 | 4.7 | 2 | --- | ||
| Liu, Ke et al. Microorganisms. (2021). 9(5) 34064692 | PM | 2021.05 | Oral Microbiota of Children Is Conserved across Han, Tibetan and Hui Groups and Is Correlated with Diet and Gut Microbiota. | 0 | 0.0 | 0 | --- | ||
| Gómez-Doñate, Marta et al. Appl Environ Microbiol. (2012). 78(16):5788-95 22685136 | PM | 2012.08 | New molecular quantitative PCR assay for detection of host-specific Bifidobacteriaceae suitable for microbial source tracking. | 8 | 0.8 | 0 | --- | ||
| Inglis, T J J et al. New Microbes New Infect. (2015). 8:171-3 27257499 | PM | 2015.11 | First bacteraemic human infection with Escherichia albertii. | 7 | 1.0 | 0 | --- | ||
| Dicksved, Johan et al. mBio. (2014). 5(5):e01212-14 25227462 | PM | 2014.09 | Susceptibility to Campylobacter infection is associated with the species composition of the human fecal microbiota. | 37 | 4.4 | 5 | --- | ||
| Künzel, Susanne et al. Anim Microbiome. (2019). 1(1):5 33499963 | PM | 2019.06 | Impact of coccidiostat and phytase supplementation on gut microbiota composition and phytate degradation in broiler chickens. | 1 | 0.3 | 0 | --- | ||
21840795 | PM | .-- | 73 | 0.0 | 2 | --- | |||
| Sureshkumar, Shanmugam et al. Anim Sci J. 91(1):e13399 32512648 | PM | 2020.00 | Administration of L. salivarius expressing 3D8 scFv as a feed additive improved the growth performance, immune homeostasis, and gut microbiota of chickens. | 1 | 0.3 | 1 | --- | ||
| Nouri, A Br Poult Sci. (2019). 60(5):530-538 31124697 | PM | 2019.10 | Chitosan nano-encapsulation improves the effects of mint, thyme, and cinnamon essential oils in broiler chickens. | 4 | 1.2 | 0 | --- | ||
| Sun, J et al. J Appl Microbiol. (2020). 128(1):54-64 31562827 | PM | 2020.01 | Effects of Rhodotorula mucilaginosa fermentation product on the laying performance, egg quality, jejunal mucosal morphology and intestinal microbiota of hens. | 3 | 0.9 | 0 | --- | ||
| Onrust, Lonneke et al. Front Vet Sci. (2015). 2:75 26734618 | PM | R | 2015.00 | Steering Endogenous Butyrate Production in the Intestinal Tract of Broilers as a Tool to Improve Gut Health. | 36 | 4.4 | 9 | --- | |
| Hazebrouck, S et al. Appl Environ Microbiol. (2006). 72(12):7460-7 16997983 | PM | 2006.12 | Constitutive delivery of bovine beta-lactoglobulin to the digestive tracts of gnotobiotic mice by engineered Lactobacillus casei. | 12 | 0.7 | 0 | --- | ||
| Wang, Mi et al. Int Immunopharmacol. (2019). 74:105690 31220696 | PM | 2019.09 | Effect of sulfated yeast beta-glucan on cyclophosphamide-induced immunosuppression in chickens. | 3 | 0.9 | 0 | --- | ||
| Robinson, Janelle et al. Int J Med Mushrooms. (2018). 20(7):685-693 30055560 | PM | 2018.00 | Medicinal Mushrooms Supplements Alter Chicken Intestinal Microbiome. | 0 | 0.0 | 0 | --- | ||
| Atterbury, Robert J et al. Appl Environ Microbiol. (2011). 77(16):5794-803 21705523 | PM | C | 2011.08 | Effects of orally administered Bdellovibrio bacteriovorus on the well-being and Salmonella colonization of young chicks. | 59 | 5.1 | 1 | --- | |
| Elghandour, M M Y et al. J Appl Microbiol. (2020). 128(3):658-674 31429174 | PM | R | 2020.03 | Saccharomyces cerevisiae as a probiotic feed additive to non and pseudo-ruminant feeding: a review. | 15 | 5.0 | 0 | --- | |
| Engberg, R M et al. Poult Sci. (2000). 79(9):1311-9 11020077 | PM | 2000.09 | Effect of zinc bacitracin and salinomycin on intestinal microflora and performance of broilers. | 43 | 1.9 | 8 | --- | ||
| Pereira da Silva, Bárbara et al. Nutrients. (2019). 11(10) 31615146 | PM | 2019.10 | Soluble Extracts from Chia Seed (Salvia hispanica L.) Affect Brush Border Membrane Functionality, Morphology and Intestinal Bacterial Populations In Vivo (Gallus gallus). | 5 | 1.5 | 2 | --- | ||
| Righi, Federico et al. Antioxidants (Basel). (2021). 10(5) 33922786 | PM | R | 2021.04 | Plant Feed Additives as Natural Alternatives to the Use of Synthetic Antioxidant Vitamins on Poultry Performances, Health, and Oxidative Status: A Review of the Literature in the Last 20 Years. | 6 | 3.1 | 0 | --- | |
| Shirani, V et al. Poult Sci. (2019). 98(6):2577-2587 30690512 | PM | 2019.06 | Pulicaria gnaphalodes powder in broiler diets: consequences for performance, gut health, antioxidant enzyme activity, and fatty acid profile. | 7 | 1.9 | 2 | --- | ||
| Xing, Jun-Hong et al. Microb Pathog. (2021). 155:104898 33878398 | PM | 2021.06 | Bacillus subtilis BSH has a protective effect on Salmonella infection by regulating the intestinal flora structure in chickens. | 0 | 0.0 | 0 | --- | ||
| Gungor, Emrah et al. Arch Anim Nutr. (2021). 75(2):137-152 33752536 | PM | 2021.04 | Effect of raw and fermented pomegranate pomace on performance, antioxidant activity, intestinal microbiota and morphology in broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Kubasova, Tereza et al. Int J Mol Sci. (2021). 22(11) 34067354 | PM | R | 2021.05 | Ecological Adaptations of Gut Microbiota Members and Their Consequences for Use as a New Generation of Probiotics. | 0 | 0.0 | 0 | --- | |
| Sheppard, Samuel K; Maiden, Martin C J Cold Spring Harb Perspect Biol. (2015). 7(8):a018119 26101080 | PM | R | 2015.06 | The evolution of Campylobacter jejuni and Campylobacter coli. | 50 | 6.5 | 1 | --- | |
| Yang, Yuting et al. Pol J Microbiol. (2021). 70(1):33-43 33815525 | PM | 2021.03 | Effects of Different Ambient Temperatures on Caecal Microbial Composition in Broilers. | 1 | 0.5 | 0 | --- | ||
| Choct, M Br Poult Sci. (2009). 50(1):9-15 19234925 | PM | R | 2009.01 | Managing gut health through nutrition. | 0 | 0.0 | 0 | --- | |
| Gan, Liping et al. Poult Sci. (2020). 99(7):3663-3674 32616263 | PM | 2020.07 | Dietary supplementation with vitamin C ameliorates the adverse effects of Salmonella Enteritidis-challenge in broilers by shaping intestinal microbiota. | 1 | 0.4 | 0 | --- | ||
| Sawosz, Ewa et al. Arch Anim Nutr. (2007). 61(6):444-51 18069616 | PM | 2007.12 | Influence of hydrocolloidal silver nanoparticles on gastrointestinal microflora and morphology of enterocytes of quails. | 18 | 1.2 | 1 | --- | ||
| Tůmová, E et al. Poult Sci. (2021). 100(2):760-764 33518130 | PM | 2021.02 | Research Note: The effects of genotype, sex, and feeding regime on performance, carcasses characteristic, and microbiota in chickens. | 3 | 1.4 | 1 | --- | ||
| Gomes, Mariana Juste Contin et al. Nutrients. (2021). 13(9) 34579124 | PM | 2021.09 | Modifications in the Intestinal Functionality, Morphology and Microbiome Following Intra-Amniotic Administration (Gallus gallus) of Grape (Vitis vinifera) Stilbenes (Resveratrol and Pterostilbene). | 0 | 0.0 | 0 | --- | ||
| Kheravii, S K et al. Poult Sci. (2017). 96(11):4006-4016 29050432 | PM | 2017.09 | Dietary sugarcane bagasse and coarse particle size of corn are beneficial to performance and gizzard development in broilers fed normal and high sodium diets. | 7 | 1.3 | 0 | --- | ||
| Chen, Cheng-Yu et al. Microbiome. (2020). 8(1):129 32917256 | PM | 2020.09 | Maternal gut microbes shape the early-life assembly of gut microbiota in passerine chicks via nests. | 5 | 2.0 | 1 | --- | ||
| Hu, Xiaotong et al. Front Microbiol. (2020). 11:586476 33603716 | PM | 2020.00 | Akkermansia muciniphila Improves Host Defense Against Influenza Virus Infection. | 2 | 0.6 | 0 | --- | ||
| Han, W et al. J Anim Sci. (2013). 91(9):4374-82 23825327 | PM | C | 2013.09 | Effects of microencapsulated Enterococcus fecalis CG1.0007 on growth performance, antioxidation activity, and intestinal microbiota in broiler chickens. | 5 | 0.5 | 0 | --- | |
| Hernandez-Patlan, Daniel et al. Front Vet Sci. (2019). 6:108 31106209 | PM | 2019.00 | Impact of a Bacillus Direct-Fed Microbial on Growth Performance, Intestinal Barrier Integrity, Necrotic Enteritis Lesions, and Ileal Microbiota in Broiler Chickens Using a Laboratory Challenge Model. | 25 | 5.9 | 9 | --- | ||
| Wang, Cong et al. AMB Express. (2021). 11(1):31 33620605 | PM | 2021.02 | Dietary purslane (Portulaca oleracea L.) promotes the growth performance of broilers by modulation of gut microbiota. | 1 | 0.5 | 0 | --- | ||
| Brunberg, Emma I et al. Front Vet Sci. (2016). 3:57 27500137 | PM | R | 2016.00 | Omnivores Going Astray: A Review and New Synthesis of Abnormal Behavior in Pigs and Laying Hens. | 17 | 2.3 | 1 | --- | |
| Waite, David W; Taylor, Michael W Front Microbiol. (2015). 6:673 26191057 | PM | R | 2015.00 | Exploring the avian gut microbiota: current trends and future directions. | 86 | 10.4 | 23 | --- | |
| Juricova, Helena et al. Sci Rep. (2021). 11(1):3290 33558560 | PM | 2021.02 | The distribution of antibiotic resistance genes in chicken gut microbiota commensals. | 1 | 0.5 | 0 | --- | ||
| Willson, Nicky-Lee et al. PLoS One. (2019). 14(4):e0214471 30943226 | PM | 2019.00 | Feed supplementation with biochar may reduce poultry pathogens, including Campylobacter hepaticus, the causative agent of Spotty Liver Disease. | 0 | 0.0 | 0 | --- | ||
| Hegde, Narasimha V et al. Vet Anim Sci. (2016). 1-2:9-14 32734018 | PM | 2016.12 | Comparison of antimicrobial resistant genes in chicken gut microbiome grown on organic and conventional diet. | 5 | 0.8 | 1 | --- | ||
| Teirlynck, Emma et al. Br J Nutr. (2009). 102(10):1453-61 19664304 | PM | C | 2009.11 | The cereal type in feed influences gut wall morphology and intestinal immune cell infiltration in broiler chickens. | 32 | 2.4 | 9 | --- | |
| Zommiti, Mohamed et al. Probiotics Antimicrob Proteins. (2020). 12(3):1266-1289 31376026 | PM | R | 2020.09 | Probiotics-Live Biotherapeutics: a Story of Success, Limitations, and Future Prospects-Not Only for Humans. | 7 | 2.8 | 0 | --- | |
| Adams, N R et al. J Infect Dis. (1972). 126(2):182-5 4340926 | PM | 1972.08 | Factors affecting the stability of transmissible enteritis virus of turkeys. | 0 | 0.0 | 0 | --- | ||
| Rabelo-Ruiz, Miguel et al. Animals (Basel). (2021). 11(2) 33572138 | PM | 2021.02 | Allium-Based Phytobiotic Enhances Egg Production in Laying Hens through Microbial Composition Changes in Ileum and Cecum. | 3 | 1.4 | 0 | --- | ||
| de Vos, Clazien J; Swanenburg, Manon Food Chem Toxicol. (2018). 117:3-12 28843598 | PM | R | 2018.07 | Health effects of feeding genetically modified (GM) crops to livestock animals: A review. | 7 | 1.5 | 0 | --- | |
| Stamilla, Alessandro et al. Biology (Basel). (2021). 10(9) 34571819 | PM | 2021.09 | Analysis of the Microbial Intestinal Tract in Broiler Chickens during the Rearing Period. | 0 | 0.0 | 0 | --- | ||
| Wang, Yuanyuan et al. Br J Nutr. (2021). 125(5):494-507 32693847 | PM | 2021.03 | Supplemental Bacillus subtilis DSM 29784 and enzymes, alone or in combination, as alternatives for antibiotics to improve growth performance, digestive enzyme activity, anti-oxidative status, immune response and the intestinal barrier of broiler chickens. | 7 | 3.5 | 2 | --- | ||
| Jeurissen, Suzan H M et al. Curr Issues Intest Microbiol. (2002). 3(1):1-14 12022808 | PM | R | 2002.03 | Parameters and techniques to determine intestinal health of poultry as constituted by immunity, integrity, and functionality. | 0 | 0.0 | 0 | --- | |
| Farag, Mayada R; Alagawany, Mahmoud J Therm Biol. (2018). 76:101-106 30143284 | PM | R | 2018.08 | Physiological alterations of poultry to the high environmental temperature. | 22 | 4.8 | 3 | --- | |
| Ludvigsen, Jane et al. Front Vet Sci. (2016). 3:16 26942187 | PM | 2016.00 | Rearing Room Affects the Non-dominant Chicken Cecum Microbiota, While Diet Affects the Dominant Microbiota. | 12 | 1.7 | 4 | --- | ||
| Nava, G M et al. Anim Health Res Rev. (2005). 6(1):105-18 16164012 | PM | R | 2005.06 | Probiotic alternatives to reduce gastrointestinal infections: the poultry experience. | 29 | 1.6 | 7 | --- | |
| Park, Si Hong et al. PLoS One. (2016). 11(3):e0151944 26992104 | PM | 2016.00 | Microbial Populations in Naked Neck Chicken Ceca Raised on Pasture Flock Fed with Commercial Yeast Cell Wall Prebiotics via an Illumina MiSeq Platform. | 28 | 3.9 | 4 | --- | ||
| Deblais, Loïc et al. Anim Health Res Rev. (2020). 21(1):15-35 31907101 | PM | R | 2020.06 | Translating 'big data': better understanding of host-pathogen interactions to control bacterial foodborne pathogens in poultry. | 0 | 0.0 | 0 | --- | |
| Shah, Tejas M et al. NPJ Biofilms Microbiomes. 5(1):24 31552140 | PM | 2019.00 | Host transcriptome and microbiome interaction modulates physiology of full-sibs broilers with divergent feed conversion ratio. | 6 | 1.4 | 3 | --- | ||
| van der Eijk, Jerine A J et al. Poult Sci. (2019). 98(12):7009-7021 31226709 | PM | 2019.12 | Differences in gut microbiota composition of laying hen lines divergently selected on feather pecking. | 9 | 2.8 | 4 | --- | ||
| Jiang, Dandan et al. Front Zool. (2020). 17(1):36 33292307 | PM | 2020.12 | Gut microbiota composition and metabolomic profiles of wild and captive Chinese monals (Lophophorus lhuysii). | 1 | 0.4 | 0 | --- | ||
| van der Hoeven-Hangoor, E et al. Poult Sci. (2013). 92(10):2713-23 24046419 | PM | 2013.10 | Ileal microbiota composition of broilers fed various commercial diet compositions. | 17 | 1.8 | 7 | --- | ||
| Slawinska, Anna et al. PLoS One. (2016). 11(12):e0168899 28002487 | PM | 2016.00 | Long-Term Transcriptomic Effects of Prebiotics and Synbiotics Delivered In Ovo in Broiler Chickens. | 23 | 3.2 | 9 | --- | ||
| Du, Encun et al. J Anim Sci Biotechnol. (2015). 6:58 26705471 | PM | 2015.00 | In vitro antibacterial activity of thymol and carvacrol and their effects on broiler chickens challenged with Clostridium perfringens. | 38 | 4.6 | 9 | --- | ||
| Johnson, M L et al. Poult Sci. (2008). 87(5):958-63 18420987 | PM | C | 2008.05 | The effect of dietary sinapic acid (4-hydroxy-3, 5-dimethoxy-cinnamic acid) on gastrointestinal tract microbial fermentation, nutrient utilization, and egg quality in laying hens. | 3 | 0.2 | 1 | --- | |
| Foysal, Md Javed et al. PeerJ. (2019). 7:e6891 31149398 | PM | 2019.00 | Dietary supplementation of black soldier fly (Hermetica illucens) meal modulates gut microbiota, innate immune response and health status of marron (Cherax cainii, Austin 2002) fed poultry-by-product and fishmeal based diets. | 7 | 1.6 | 1 | --- | ||
| Sedgh-Gooya, Shadi et al. J Anim Physiol Anim Nutr (Berl). (2021). 105(1):119-128 32812683 | PM | 2021.01 | Yellow mealworm, Tenebrio molitor (Col: Tenebrionidae), larvae powder as dietary protein sources for broiler chickens: Effects on growth performance, carcass traits, selected intestinal microbiota and blood parameters. | 4 | 1.8 | 1 | --- | ||
| Stutz, M W et al. Poult Sci. (1983). 62(8):1626-32 6634597 | PM | 1983.08 | Effects of diet, bacitracin, and body weight restrictions on the intestine of broiler chicks. | 2 | 0.1 | 1 | --- | ||
| Bajaj, Jasmohan S et al. Hepatology. (2018). 68(1):234-247 29350768 | PM | 2018.07 | Diet affects gut microbiota and modulates hospitalization risk differentially in an international cirrhosis cohort. | 34 | 7.3 | 1 | --- | ||
| Jeong, J S; Kim, I H Poult Sci. (2014). 93(12):3097-103 25260523 | PM | C | 2014.12 | Effect of Bacillus subtilis C-3102 spores as a probiotic feed supplement on growth performance, noxious gas emission, and intestinal microflora in broilers. | 41 | 5.0 | 8 | --- | |
| Bodawatta, Kasun H et al. Anim Microbiome. (2020). 2(1):9 33499943 | PM | 2020.03 | Cloacal swabs and alcohol bird specimens are good proxies for compositional analyses of gut microbial communities of Great tits (Parus major). | 2 | 0.7 | 0 | --- | ||
| Qin, Chubin et al. Anim Nutr. (2018). 4(4):358-366 30564755 | PM | 2018.12 | Effect of Saccharomyces boulardii and Bacillus subtilis B10 on gut microbiota modulation in broilers. | 9 | 2.1 | 3 | --- | ||
| Yang, Jin-Long et al. J Microbiol Methods. (2009). 77(1):63-6 19386226 | PM | 2009.04 | New strategies for electrophoresis analysis of enterobacterial repetitive intergenic consensus PCR in animal intestinal microflora. | 1 | 0.1 | 0 | --- | ||
| King, M D et al. Poult Sci. (2009). 88(7):1388-93 19531708 | PM | 2009.07 | Proteolytic bacteria in the lower digestive tract of poultry may affect avian influenza virus pathogenicity. | 5 | 0.4 | 1 | --- | ||
| Rezaei, Siamak et al. Poult Sci. (2015). 94(10):2414-20 26240398 | PM | 2015.10 | Effect of oligosaccharides extract from palm kernel expeller on growth performance, gut microbiota and immune response in broiler chickens. | 17 | 2.3 | 3 | --- | ||
| Long, Denglu et al. Pharmacol Res. (2021). 167:105543 33711435 | PM | 2021.05 | Dysbacteriosis induces abnormal neurogenesis via LPS in a pathway requiring NF-κB/IL-6. | 2 | 1.1 | 0 | --- | ||
| Song, Jinhuan et al. FASEB J. (2020). 34(5):6837-6853 32223025 | PM | 2020.05 | Dysbacteriosis-induced LPS elevation disturbs the development of muscle progenitor cells by interfering with retinoic acid signaling. | 2 | 0.7 | 0 | --- | ||
| Sais, Mounira et al. Poult Sci. (2019) 31399737 | PM | 2019.08 | Evaluation of dietary supplementation of a novel microbial muramidase on gastrointestinal functionality and growth performance in broiler chickens. | 2 | 0.6 | 0 | --- | ||
| Medvecky, Matej et al. BMC Genomics. (2018). 19(1):561 30064352 | PM | 2018.07 | Whole genome sequencing and function prediction of 133 gut anaerobes isolated from chicken caecum in pure cultures. | 34 | 7.3 | 13 | --- | ||
| Kraimi, Narjis et al. J Exp Biol. (2019). 222(Pt 10) 30975742 | PM | 2019.05 | Effects of gut microbiota transfer on emotional reactivity in Japanese quails (Coturnix japonica). | 4 | 1.0 | 3 | --- | ||
| Yang, Shuhua et al. Food Chem Toxicol. (2020). 137:111139 31981684 | PM | 2020.03 | Selenium-enriched yeast reduces caecal pathological injuries and intervenes changes of the diversity of caecal microbiota caused by Ochratoxin-A in broilers. | 4 | 1.3 | 1 | --- | ||
| Khan, Samiullah; Chousalkar, Kapil K Appl Microbiol Biotechnol. (2020). 104(1):319-334 31758235 | PM | 2020.01 | Short-term feeding of probiotics and synbiotics modulates caecal microbiota during Salmonella Typhimurium infection but does not reduce shedding and invasion in chickens. | 7 | 2.2 | 3 | --- | ||
| Xu, Z R et al. Poult Sci. (2003). 82(6):1030-6 12817461 | PM | 2003.06 | Effects of dietary fructooligosaccharide on digestive enzyme activities, intestinal microflora and morphology of male broilers. | 113 | 5.7 | 15 | --- | ||
| Adewole, Deborah Animals (Basel). (2020). 10(8) 32824171 | PM | 2020.08 | Effect of Dietary Supplementation with Coarse or Extruded Oat Hulls on Growth Performance, Blood Biochemical Parameters, Ceca Microbiota and Short Chain Fatty Acids in Broiler Chickens. | 2 | 0.8 | 1 | --- | ||
| Zhang, Lihuan et al. Open Life Sci. (2021). 16(1):311-322 33851031 | PM | 2021.00 | Supplementation of probiotics in water beneficial growth performance, carcass traits, immune function, and antioxidant capacity in broiler chickens. | 2 | 0.9 | 0 | --- | ||
| Lu, Chenyang et al. Appl Microbiol Biotechnol. (2017). 101(14):5809-5818 28510800 | PM | 2017.07 | Structural modulation of gut microbiota in Bama minipigs in response to treatment with a "growth-promoting agent", salbutamol. | 3 | 0.5 | 0 | --- | ||
| Prayoonthien, Phatcharin et al. 3 Biotech. (2018). 8(1):41 29291154 | PM | 2018.01 | In vitro fermentation of copra meal hydrolysate by chicken microbiota. | 2 | 0.4 | 1 | --- | ||
| Williamson, Ian A et al. Cell Mol Gastroenterol Hepatol. (2018). 6(3):301-319 30123820 | PM | 2018.00 | A High-Throughput Organoid Microinjection Platform to Study Gastrointestinal Microbiota and Luminal Physiology. | 66 | 12.6 | 1 | --- | ||
| Szmigiel, Ida et al. Microorganisms. (2021). 9(2) 33673092 | PM | 2021.02 | Changes in the Microbial Composition of the Cecum and Histomorphometric Analysis of Its Epithelium in Broilers Fed with Feed Mixture Containing Fermented Rapeseed Meal. | 1 | 0.5 | 0 | --- | ||
| Xie, Jingjing et al. J Anim Physiol Anim Nutr (Berl). (2020). 104(1):230-236 31762097 | PM | C | 2020.01 | Effects of enzymatic hydrolysate of locust bean gum on digestibility, intestinal morphology and microflora of broilers. | 0 | 0.0 | 0 | --- | |
| Demirci, Mehmet et al. J Diabetes Complications. (2020). 34(2):107449 31677982 | PM | 2020.02 | Bacteroidetes and Firmicutes levels in gut microbiota and effects of hosts TLR2/TLR4 gene expression levels in adult type 1 diabetes patients in Istanbul, Turkey. | 9 | 2.9 | 0 | --- | ||
| Bielke, L R et al. Adv Exp Med Biol. (2017). 1033:185-197 29101656 | PM | 2017.00 | Impact of Enteric Health and Mucosal Permeability on Skeletal Health and Lameness in Poultry. | 6 | 1.0 | 1 | --- | ||
| Giannenas, I et al. Asian-Australas J Anim Sci. (2014). 27(2):225-36 25049947 | PM | 2014.02 | Dietary Supplementation of Benzoic Acid and Essential Oil Compounds Affects Buffering Capacity of the Feeds, Performance of Turkey Poults and Their Antioxidant Status, pH in the Digestive Tract, Intestinal Microbiota and Morphology. | 22 | 2.4 | 5 | --- | ||
| Wysok, B; Uradziński, J Pol J Vet Sci. (2009). 12(1):141-8 19459452 | PM | R | 2009.00 | Campylobacter spp.--a significant microbiological hazard in food. I. Characteristics of Campylobacter species, infection source, epidemiology. | 2 | 0.1 | 0 | --- | |
| Cui, Yifang et al. Vaccines (Basel). (2020). 8(4) 33316999 | PM | 2020.12 | Immunization of Chickens with the Enterobactin Conjugate Vaccine Reduced Campylobacter jejuni Colonization in the Intestine. | 1 | 0.4 | 1 | --- | ||
| Pérez-Pascual, David et al. Microorganisms. (2020). 8(9) 32899237 | PM | 2020.09 | Growth Performance and Adaptability of European Sea Bass (Dicentrarchus labrax) Gut Microbiota to Alternative Diets Free of Fish Products. | 2 | 0.8 | 0 | --- | ||
| Guo, F C et al. Poult Sci. (2004). 83(2):175-82 14979567 | PM | 2004.02 | Effects of mushroom and herb polysaccharides, as alternatives for an antibiotic, on the cecal microbial ecosystem in broiler chickens. | 31 | 1.6 | 6 | --- | ||
| Sofos, J N et al. Poult Sci. (1985). 64(5):832-40 4001071 | PM | 1985.05 | Effects of sorbic acid feed fungistat on the intestinal microflora of floor-reared broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Wang, Jianping et al. Antioxidants (Basel). (2021). 10(9) 34573054 | PM | 2021.09 | The Effect of Oxidative Stress on the Chicken Ovary: Involvement of Microbiota and Melatonin Interventions. | 0 | 0.0 | 0 | --- | ||
| Muturi, Ephantus J et al. Parasit Vectors. (2021). 14(1):83 33509255 | PM | 2021.01 | Blood meal source and mixed blood-feeding influence gut bacterial community composition in Aedes aegypti. | 3 | 1.4 | 0 | --- | ||
| Blajman, Jesica et al. Res Vet Sci. (2015). 101:50-6 26267089 | PM | 2015.08 | In vitro and in vivo screening of native lactic acid bacteria toward their selection as a probiotic in broiler chickens. | 9 | 1.2 | 0 | --- | ||
| Naqi, S A et al. Am J Vet Res. (1984). 45(10):2193-5 6388437 | PM | 1984.10 | Distribution of immunoglobulin-bearing cells in the gut-associated lymphoid tissues of the turkey: effect of oral treatment with intestinal microflora. | 1 | 0.0 | 0 | --- | ||
| Wen, Chaoliang et al. Microbiome. (2021). 9(1):126 34074340 | PM | 2021.06 | Joint contributions of the gut microbiota and host genetics to feed efficiency in chickens. | 4 | 2.3 | 1 | --- | ||
| Kong, Anan et al. Ecotoxicol Environ Saf. (2020). 206:111400 33010593 | PM | 2020.12 | The fungicide thiram perturbs gut microbiota community and causes lipid metabolism disorder in chickens. | 3 | 1.3 | 0 | --- | ||
| Ochoa-Repáraz, Javier et al. Ann Transl Med. (2017). 5(6):145 28462225 | PM | 2017.03 | The chicken or the egg dilemma: intestinal dysbiosis in multiple sclerosis. | 13 | 2.2 | 0 | --- | ||
| Thibodeau, Alexandre et al. PLoS One. (2015). 10(7):e0131978 26161743 | PM | 2015.00 | Chicken Caecal Microbiome Modifications Induced by Campylobacter jejuni Colonization and by a Non-Antibiotic Feed Additive. | 52 | 6.3 | 17 | --- | ||
| Kong, Linglian et al. Front Immunol. (2021). 12:713485 34630388 | PM | 2021.00 | Glycerol Monolaurate Ameliorated Intestinal Barrier and Immunity in Broilers by Regulating Intestinal Inflammation, Antioxidant Balance, and Intestinal Microbiota. | 0 | 0.0 | 0 | --- | ||
| Wen, Chaoliang et al. ISME J. (2019). 13(6):1422-1436 30728470 | PM | 2019.06 | The gut microbiota is largely independent of host genetics in regulating fat deposition in chickens. | 41 | 10.9 | 15 | --- | ||
| Ulger Toprak, Nurver et al. Anaerobe. (2004). 10(5):255-9 16701525 | PM | 2004.10 | Antimicrobial susceptibilities of Bacteroides fragilis and Bacteroides thetaiotaomicron strains isolated from clinical specimens and human intestinal microbiota. | 4 | 0.2 | 0 | --- | ||
| Dias, Desirrê Morais et al. Food Res Int. (2019). 123:172-180 31284965 | PM | 2019.09 | Soluble extracts from carioca beans (Phaseolus vulgaris L.) affect the gut microbiota and iron related brush border membrane protein expression in vivo (Gallus gallus). | 7 | 2.0 | 4 | --- | ||
| Feighner, S D; Dashkevicz, M P Appl Environ Microbiol. (1988). 54(2):337-42 3355130 | PM | 1988.02 | Effect of dietary carbohydrates on bacterial cholyltaurine hydrolase in poultry intestinal homogenates. | 11 | 0.3 | 0 | --- | ||
| Hampson, D J et al. Vet Microbiol. (2002). 86(4):351-60 11955785 | PM | 2002.05 | Dietary enzyme and zinc bacitracin reduce colonisation of layer hens by the intestinal spirochaete Brachyspira intermedia. | 2 | 0.1 | 0 | --- | ||
| Shi, Jie et al. J Agric Food Chem. (2020). 68(23):6333-6346 32432868 | PM | 2020.06 | High-Meat-Protein High-Fat Diet Induced Dysbiosis of Gut Microbiota and Tryptophan Metabolism in Wistar Rats. | 5 | 1.8 | 3 | --- | ||
| Oh, Sung T; Lillehoj, Hyun S Avian Pathol. (2016). 45(3):313-6 26957203 | PM | R | 2016.06 | The role of host genetic factors and host immunity in necrotic enteritis. | 15 | 2.2 | 3 | --- | |
| Kim, Junhyung et al. Gut Pathog. (2017). 9:68 29201150 | PM | 2017.00 | Differences in the gut microbiota of dogs (Canis lupus familiaris) fed a natural diet or a commercial feed revealed by the Illumina MiSeq platform. | 38 | 6.1 | 2 | --- | ||
| Adaszynska-Skwirzynska, Michalina; Szczerbinska, Danuta Poult Sci. (2019). 98(1):358-365 30165505 | PM | 2019.01 | The effect of lavender (Lavandula angustifolia) essential oil as a drinking water supplement on the production performance, blood biochemical parameters, and ileal microflora in broiler chickens. | 11 | 2.6 | 1 | --- | ||
| Ding, Jinmei et al. Genet Sel Evol. (2016). 48(1):93 27894254 | PM | 2016.11 | Divergent selection-induced obesity alters the composition and functional pathways of chicken gut microbiota. | 19 | 3.0 | 5 | --- | ||
| Xing, Si-Cheng et al. Microbiome. (2021). 9(1):177 34433492 | PM | 2021.08 | Breed differences in the expression levels of gga-miR-222a in laying hens influenced H2S production by regulating methionine synthase genes in gut bacteria. | 0 | 0.0 | 0 | --- | ||
| Goodarzi Boroojeni, F et al. Poult Sci. (2014). 93(6):1440-52 24879694 | PM | 2014.06 | The effects of different thermal treatments and organic acid levels in feed on microbial composition and activity in gastrointestinal tract of broilers. | 8 | 0.9 | 4 | --- | ||
| Gajardo, Karina et al. Appl Environ Microbiol. (2017). 83(5) 27986728 | PM | 2017.03 | Alternative Protein Sources in the Diet Modulate Microbiota and Functionality in the Distal Intestine of Atlantic Salmon (Salmo salar). | 35 | 5.8 | 2 | --- | ||
| Wu, Haixia et al. J Pharm Biomed Anal. 67-68:175-85 22565170 | PM | 2012.00 | In vitro metabolism of cyadox in rat, chicken and swine using ultra-performance liquid chromatography quadrupole time-of-flight mass spectrometry. | 5 | 0.4 | 0 | --- | ||
| Park, Jae-Hong et al. J Poult Sci. (2018). 55(1):47-53 32055155 | PM | 2018.00 | Egg Production, Egg Quality, Blood Profiles, Cecal Microflora, and Excreta Noxious Gas Emission in Laying Hens Fed with Fenugreek (Trigonella foenum-graecum L.) Seed Extract. | 2 | 0.4 | 0 | --- | ||
| Badri, Dayakar V et al. J Nutr. (2021). 151(12):3637-3650 34587256 | PM | 2021.12 | Dietary Protein and Carbohydrate Levels Affect the Gut Microbiota and Clinical Assessment in Healthy Adult Cats. | 0 | 0.0 | 0 | --- | ||
| Schreven, Stijn J J et al. FEMS Microbiol Ecol. (2021). 97(5) 33784380 | PM | 2021.04 | Relative contributions of egg-associated and substrate-associated microorganisms to black soldier fly larval performance and microbiota. | 1 | 0.5 | 0 | --- | ||
| Skarżyńska, Magdalena et al. PLoS One. (2020). 15(12):e0242987 33270717 | PM | 2020.00 | A metagenomic glimpse into the gut of wild and domestic animals: Quantification of antimicrobial resistance and more. | 7 | 2.2 | 1 | --- | ||
| Wang, Jianping et al. Poult Sci. (2021). 100(2):1109-1119 33518070 | PM | 2021.02 | Differential analysis of gut microbiota and the effect of dietary Enterococcus faecium supplementation in broiler breeders with high or low laying performance. | 5 | 2.4 | 1 | --- | ||
| Sais, Mounira et al. Poult Sci. (2020). 99(1):235-245 32416807 | PM | 2020.01 | Evaluation of dietary supplementation of a novel microbial muramidase on gastrointestinal functionality and growth performance in broiler chickens. | 2 | 0.6 | 0 | --- | ||
| Nava, Gerardo M et al. Vet Microbiol. (2009). 137(3-4):345-53 19269115 | PM | C | 2009.06 | Molecular analysis of microbial community structure in the chicken ileum following organic acid supplementation. | 8 | 0.6 | 4 | --- | |
| Guo, Shuangshuang et al. Front Vet Sci. (2021). 8:680742 34136557 | PM | 2021.00 | Dietary Lactobacillus fermentum and Bacillus coagulans Supplementation Modulates Intestinal Immunity and Microbiota of Broiler Chickens Challenged by Clostridium perfringens. | 2 | 0.9 | 0 | --- | ||
| Zhu, Cui et al. Poult Sci. (2021). 100(2):1034-1048 33518062 | PM | 2021.02 | Dietary supplementation with berberine improves growth performance and modulates the composition and function of cecal microbiota in yellow-feathered broilers. | 3 | 1.4 | 2 | --- | ||
| Sidiropoulou, Erasmia et al. Front Vet Sci. (2020). 7:420 32851011 | PM | 2020.00 | In vitro Anticoccidial Study of Oregano and Garlic Essential Oils and Effects on Growth Performance, Fecal Oocyst Output, and Intestinal Microbiota in vivo. | 11 | 3.4 | 3 | --- | ||
| Marsteller, Nathan L et al. Food Chem Toxicol. (2020). 141:111398 32437892 | PM | 2020.07 | Evaluating the potential allergenicity of dietary proteins using model strong to non-allergenic proteins in germ-free mice. | 0 | 0.0 | 0 | --- | ||
| Apajalahti, J H et al. Appl Environ Microbiol. (2001). 67(12):5656-67 11722920 | PM | 2001.12 | Percent G+C profiling accurately reveals diet-related differences in the gastrointestinal microbial community of broiler chickens. | 28 | 1.3 | 4 | --- | ||
| Mountzouris, Konstantinos C et al. J Anim Physiol Anim Nutr (Berl). (2019). 103(4):1143-1159 31087706 | PM | C | 2019.07 | Dietary probiotic form modulates broiler gut microbiota indices and expression of gut barrier genes including essential components for gut homeostasis. | 2 | 0.5 | 1 | --- | |
| Arsène, Mbarga M J et al. Vet World. (2021). 14(2):319-328 33776297 | PM | R | 2021.02 | The use of probiotics in animal feeding for safe production and as potential alternatives to antibiotics. | 3 | 1.4 | 0 | --- | |
| Huang, Xuewei et al. Cytokine. (2020). 136:155269 32919254 | PM | 2020.12 | Lactobacillus johnsonii-activated chicken bone marrow-derived dendritic cells exhibit maturation and increased expression of cytokines and chemokines in vitro. | 0 | 0.0 | 0 | --- | ||
| Song, J et al. Poult Sci. (2014). 93(3):581-8 24604851 | PM | 2014.03 | Effect of a probiotic mixture on intestinal microflora, morphology, and barrier integrity of broilers subjected to heat stress. | 75 | 8.3 | 12 | --- | ||
| Buddhasiri, Songphon et al. Front Microbiol. (2021). 12:716761 34497597 | PM | 2021.00 | Anti-inflammatory Effect of Probiotic Limosilactobacillus reuteri KUB-AC5 Against Salmonella Infection in a Mouse Colitis Model. | 0 | 0.0 | 0 | --- | ||
| Paraskeuas, Vasileios V; Mountzouris, Konstantinos C Poult Sci. (2019). 98(5):2220-2230 30597072 | PM | 2019.05 | Modulation of broiler gut microbiota and gene expression of Toll-like receptors and tight junction proteins by diet type and inclusion of phytogenics. | 10 | 2.6 | 0 | --- | ||
| Amani, Fatemeh et al. Trop Anim Health Prod. (2020). 52(6):3501-3508 32929588 | PM | 2020.11 | Antimicrobial resistance and virulence genes in the Escherichia coli isolates obtained from ostrich. | 0 | 0.0 | 0 | --- | ||
| Oz, Helieh S Nutrients. (2017). 9(8) 28800092 | PM | 2017.08 | Induced Aberrant Organisms with Novel Ability to Protect Intestinal Integrity from Inflammation in an Animal Model. | 1 | 0.2 | 0 | --- | ||
| Collins, Deirdre A; Riley, Thomas V Trop Med Infect Dis. (2018). 4(1) 30597880 | PM | R | 2018.12 | Clostridium difficile in Asia: Opportunities for One Health Management. | 3 | 0.7 | 0 | --- | |
| Wang, Wei-Wei et al. Front Microbiol. (2020). 11:600 32351471 | PM | 2020.00 | Supplemental Clostridium butyricum Modulates Lipid Metabolism Through Shaping Gut Microbiota and Bile Acid Profile of Aged Laying Hens. | 3 | 0.9 | 0 | --- | ||
| Boran, Perran et al. Eur J Pediatr. (2020). 179(3):385-393 31761973 | PM | 2020.03 | The impact of vitamin B12 deficiency on infant gut microbiota. | 5 | 1.7 | 0 | --- | ||
| Becker, Anne A M J et al. Front Microbiol. (2020). 11:1025 32523573 | PM | 2020.00 | Integrating Gut Bacterial Diversity and Captive Husbandry to Optimize Vulture Conservation. | 1 | 0.3 | 1 | --- | ||
| Moraes, P O et al. Poult Sci. (2019). 98(11):5456-5464 31247639 | PM | 2019.11 | Comparison between a commercial blend of functional oils and monensin on the performance and microbiota of coccidiosis-challenged broilers. | 8 | 2.4 | 2 | --- | ||
| Wasti, Sanjeev et al. PLoS One. (2021). 16(7):e0254936 34310622 | PM | 2021.00 | Dietary supplementation of alpha-lipoic acid mitigates the negative effects of heat stress in broilers. | 0 | 0.0 | 0 | --- | ||
| Engberg, R M et al. Br Poult Sci. (2002). 43(4):569-79 12365514 | PM | 2002.09 | The influence of grinding and pelleting of feed on the microbial composition and activity in the digestive tract of broiler chickens. | 20 | 1.0 | 4 | --- | ||
| Rincel, Marion et al. Brain Behav Immun. (2019). 80:179-192 30872090 | PM | 2019.08 | Multi-hit early life adversity affects gut microbiota, brain and behavior in a sex-dependent manner. | 0 | 0.0 | 0 | --- | ||
| Durazzi, Francesco et al. Sci Rep. (2021). 11(1):3030 33542369 | PM | 2021.02 | Comparison between 16S rRNA and shotgun sequencing data for the taxonomic characterization of the gut microbiota. | 10 | 4.8 | 0 | --- | ||
| Xu, Yunhe et al. BMC Microbiol. (2016). 16(1):259 27814685 | PM | 2016.11 | High-throughput sequencing technology to reveal the composition and function of cecal microbiota in Dagu chicken. | 40 | 6.3 | 18 | --- | ||
| Mon, Khin K Z et al. Front Vet Sci. (2015). 2:61 26664988 | PM | 2015.00 | Salmonella enterica Serovars Enteritidis Infection Alters the Indigenous Microbiota Diversity in Young Layer Chicks. | 35 | 4.2 | 13 | --- | ||
| Peinado, M J et al. Animal. (2013). 7(11):1779-88 24016483 | PM | C | 2013.11 | Effects of inulin and di-D-fructose dianhydride-enriched caramels on intestinal microbiota composition and performance of broiler chickens. | 4 | 0.4 | 2 | --- | |
| Zeng, Y et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(1):e449-e459 28771826 | PM | 2018.02 | Lactobacillus plantarum BS22 promotes gut microbial homeostasis in broiler chickens exposed to aflatoxin B1. | 3 | 0.6 | 1 | --- | ||
| Stanley, Dragana et al. Vet Microbiol. (2012). 159(1-2):155-62 22487456 | PM | 2012.09 | Changes in the caecal microflora of chickens following Clostridium perfringens challenge to induce necrotic enteritis. | 45 | 4.3 | 23 | --- | ||
| Wu, Bangyuan et al. Ecotoxicol Environ Saf. (2014). 109:70-6 25164205 | PM | 2014.11 | Toxicological effects of dietary nickel chloride on intestinal microbiota. | 6 | 0.7 | 1 | --- | ||
| Kim, J S et al. Poult Sci. (2018). 97(7):2411-2418 29635543 | PM | 2018.07 | Processing diets containing corn distillers' dried grains with solubles in growing broiler chickens: effects on performance, pellet quality, ileal amino acids digestibility, and intestinal microbiota. | 3 | 0.6 | 0 | --- | ||
| Zhang, Bing et al. Poult Sci. (2021). 100(2):810-819 33518135 | PM | 2021.02 | Effects of rhamnolipids on growth performance and intestinal health parameters in Linnan yellow broilers. | 3 | 1.4 | 1 | --- | ||
| Yasuda, Akiko et al. Biochem Biophys Res Commun. (2012). 422(4):546-50 22580001 | PM | 2012.06 | Dietary supplementation with fructooligosaccharides attenuates allergic peritonitis in mice. | 7 | 0.7 | 0 | --- | ||
| Giannenas, I et al. Br Poult Sci. (2018). 59(5):545-553 29873243 | PM | 2018.10 | Effect of herbal feed additives on performance parameters, intestinal microbiota, intestinal morphology and meat lipid oxidation of broiler chickens. | 9 | 2.0 | 2 | --- | ||
| Singh, A et al. Poult Sci. (1985). 64(5):844-51 4001072 | PM | 1985.05 | Effects of sodium diacetate on the growth, feed efficiency, and intestinal microflora of broilers. | 1 | 0.0 | 0 | --- | ||
| Kreisinger, Jakub et al. Ecol Evol. (2018). 8(19):9793-9802 30386575 | PM | 2018.10 | Fecal microbiota associated with phytohaemagglutinin-induced immune response in nestlings of a passerine bird. | 2 | 0.5 | 0 | --- | ||
| Gharib-Naseri, Kosar et al. Anim Nutr. (2021). 7(1):185-197 33997347 | PM | 2021.03 | Bacillus amyloliquefaciens CECT 5940 improves performance and gut function in broilers fed different levels of protein and/or under necrotic enteritis challenge. | 2 | 1.0 | 0 | --- | ||
| Mullineaux-Sanders, Caroline et al. mBio. (2021). 12(5):e0241021 34609899 | PM | 2021.10 | Citrobacter amalonaticus Inhibits the Growth of Citrobacter rodentium in the Gut Lumen. | 0 | 0.0 | 0 | --- | ||
| Ijaz, Muhammad Umair et al. J Agric Food Chem. (2020). 68(13):3933-3946 32148030 | PM | 2020.04 | Meat Protein in High-Fat Diet Induces Adipogensis and Dyslipidemia by Altering Gut Microbiota and Endocannabinoid Dysregulation in the Adipose Tissue of Mice. | 3 | 1.0 | 1 | --- | ||
| Gan, Liping et al. Poult Sci. (2020). 99(7):3594-3605 32616256 | PM | 2020.07 | Effects of dietary vitamins supplementation level on the production performance and intestinal microbiota of aged laying hens. | 4 | 1.5 | 0 | --- | ||
| Chang, Cheng-Wei T et al. Front Vet Sci. (2020). 7:586813 33553275 | PM | 2020.00 | Effects of Mesobiliverdin IXα-Enriched Microalgae Feed on Gut Health and Microbiota of Broilers. | 1 | 0.3 | 0 | --- | ||
| Jahanian, R; Ashnagar, M Poult Sci. (2015). 94(9):2165-72 26188028 | PM | 2015.09 | Effect of dietary supplementation of mannan-oligosaccharides on performance, blood metabolites, ileal nutrient digestibility, and gut microflora in Escherichia coli-challenged laying hens. | 6 | 0.8 | 0 | --- | ||
| Ciurescu, G et al. Poult Sci. (2020). 99(11):5960-5971 33142513 | PM | C | 2020.11 | Effect of Bacillus subtilis on growth performance, bone mineralization, and bacterial population of broilers fed with different protein sources. | 3 | 1.3 | 1 | --- | |
| Liao, Feng et al. Microbiologyopen. (2019). 8(4):e00693 29978594 | PM | 2019.04 | Characteristics of microbial communities and intestinal pathogenic bacteria for migrated Larus ridibundus in southwest China. | 6 | 1.5 | 1 | --- | ||
| de Haas, Elske N; van der Eijk, Jerine A J Neurosci Biobehav Rev. (2018). 95:170-188 30055196 | PM | R | 2018.12 | Where in the serotonergic system does it go wrong? Unravelling the route by which the serotonergic system affects feather pecking in chickens. | 22 | 5.2 | 4 | --- | |
| Muir, W I et al. Dev Comp Immunol. 24(2-3):325-42 10717296 | PM | R | 2000.00 | Immunity, vaccination and the avian intestinal tract. | 24 | 1.0 | 4 | --- | |
| Chantziaras, Ilias et al. J Antimicrob Chemother. (2017). 72(7):1991-2001 28419236 | PM | 2017.07 | Studying the effect of administration route and treatment dose on the selection of enrofloxacin resistance in commensal Escherichia coli in broilers. | 3 | 0.5 | 0 | --- | ||
| Paige, J C et al. Vet Clin North Am Food Anim Pract. (1999). 15(1):31-43, viii 10088210 | PM | R | 1999.03 | Health implications of residues of veterinary drugs and chemicals in animal tissues. | 6 | 0.2 | 0 | --- | |
| Tsiouris, Vasilios et al. Pathogens. (2021). 10(5) 33926144 | PM | 2021.04 | Efficacy of a Dietary Polyherbal Formula on the Performance and Gut Health in Broiler Chicks after Experimental Infection with Eimeria spp. | 0 | 0.0 | 0 | --- | ||
| Liu, Tao et al. Appl Microbiol Biotechnol. (2020). 104(23):10279-10291 33026495 | PM | 2020.12 | Glycerol monolaurate improves performance, intestinal development, and muscle amino acids in yellow-feathered broilers via manipulating gut microbiota. | 5 | 2.2 | 2 | --- | ||
| Prasai, Tanka P et al. PLoS One. (2016). 11(4):e0154061 27116607 | PM | 2016.00 | Biochar, Bentonite and Zeolite Supplemented Feeding of Layer Chickens Alters Intestinal Microbiota and Reduces Campylobacter Load. | 14 | 1.9 | 3 | --- | ||
| Guo, Mengjiao et al. Front Microbiol. (2021). 12:664604 34140939 | PM | 2021.00 | Lacticaseibacillus rhamnosus Reduces the Pathogenicity of Escherichia coli in Chickens. | 0 | 0.0 | 0 | --- | ||
| Capunitan, Darien C et al. Mol Ecol. (2020). 29(4):829-847 31943484 | PM | 2020.02 | Evolutionary signal in the gut microbiomes of 74 bird species from Equatorial Guinea. | 13 | 4.2 | 3 | --- | ||
| Kareem, Karwan Yaseen et al. BMC Vet Res. (2016). 12(1):163 27496016 | PM | 2016.08 | Effects of dietary postbiotic and inulin on growth performance, IGF1 and GHR mRNA expression, faecal microbiota and volatile fatty acids in broilers. | 28 | 4.3 | 4 | --- | ||
| Peng, Q et al. Poult Sci. (2016). 95(4):893-900 26772658 | PM | 2016.04 | Effects of dietary Lactobacillus plantarum B1 on growth performance, intestinal microbiota, and short chain fatty acid profiles in broiler chickens. | 35 | 5.1 | 11 | --- | ||
| Han, Zifeng et al. Vet Microbiol. (2020). 240:108504 31902497 | PM | 2020.01 | Adhesion and invasion of Campylobacter jejuni in chickens with a modified gut microbiota due to antibiotic treatment. | 2 | 0.6 | 1 | --- | ||
| Liu, H Y et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(3):706-716 29105163 | PM | 2018.06 | In vitro effects of inulin and soya bean oligosaccharide on skatole production and the intestinal microbiota in broilers. | 6 | 1.3 | 0 | --- | ||
| Pederson, K et al. Acta Vet Scand. (1994). 35(4):439-43 7676929 | PM | 1994.00 | Evidence for the colonization of lactic acid bacteria in the gastrointestinal tract of suckling mink. | 2 | 0.1 | 0 | --- | ||
| Kim, Min Ju et al. Anim Biosci. (2021) 34293847 | PM | 2021.06 | Hot-melt extruded copper sulfate affects the growth performance, meat quality, and copper bioavailability of broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Abdel-Latif, Mervat A et al. PLoS One. (2017). 12(10):e0185153 29059196 | PM | 2017.00 | Exogenous dietary lysozyme improves the growth performance and gut microbiota in broiler chickens targeting the antioxidant and non-specific immunity mRNA expression. | 14 | 2.2 | 3 | --- | ||
| Lee, Annah et al. Microorganisms. (2020). 8(12) 33260977 | PM | 2020.11 | A Role for the Microbiota in the Immune Phenotype Alteration Associated with the Induction of Disease Tolerance and Persistent Asymptomatic Infection of Salmonella in the Chicken. | 1 | 0.4 | 0 | --- | ||
| Kogut, Michael H et al. Poult Sci. (2018). 97(7):2339-2346 29618086 | PM | R | 2018.07 | Inflammatory phenotypes in the intestine of poultry: not all inflammation is created equal. | 22 | 4.7 | 3 | --- | |
| Marrow, Judilee et al. J Wildl Dis. (2009). 45(2):302-13 19395740 | PM | 2009.04 | Prevalence and antibiotic-resistance characteristics of Enterococcus spp. Isolated from free-living and captive raptors in Central Illinois. | 13 | 0.9 | 0 | --- | ||
| Broom, Leon J; Kogut, Michael H Vet Immunol Immunopathol. (2018). 204:44-51 30596380 | PM | R | 2018.10 | The role of the gut microbiome in shaping the immune system of chickens. | 21 | 4.8 | 7 | --- | |
| Ptak, Anna et al. PLoS One. (2015). 10(3):e0119770 25781608 | PM | C | 2015.00 | Phytase modulates ileal microbiota and enhances growth performance of the broiler chickens. | 23 | 2.8 | 8 | --- | |
| Palamidi, Irida; Mountzouris, Konstantinos C Anim Nutr. (2018). 4(4):367-377 30564756 | PM | 2018.12 | Diet supplementation with an organic acids-based formulation affects gut microbiota and expression of gut barrier genes in broilers. | 10 | 2.4 | 2 | --- | ||
| Pallav, Kumar et al. Gut Microbes. (2014). 5(4):458-67 25006989 | PM | C | 2014.07 | Effects of polysaccharopeptide from Trametes versicolor and amoxicillin on the gut microbiome of healthy volunteers: a randomized clinical trial. | 19 | 2.2 | 1 | --- | |
| Osman, Kamelia et al. Front Microbiol. (2016). 7:1846 27920760 | PM | 2016.00 | Prevalence of the Antibiotic Resistance Genes in Coagulase-Positive-and Negative-Staphylococcus in Chicken Meat Retailed to Consumers. | 16 | 2.2 | 0 | --- | ||
| Ocejo, Medelin et al. Sci Rep. (2019). 9(1):2506 30792439 | PM | 2019.02 | 16S rRNA amplicon sequencing characterization of caecal microbiome composition of broilers and free-range slow-growing chickens throughout their productive lifespan. | 49 | 12.0 | 28 | --- | ||
| Zhou, Jianmin et al. Anim Nutr. (2021). 7(1):152-162 33997343 | PM | 2021.03 | Dietary supplemental xylooligosaccharide modulates nutrient digestibility, intestinal morphology, and gut microbiota in laying hens. | 3 | 1.5 | 1 | --- | ||
| Zenner, Christian et al. mSystems. (2021). 6(3) 34006629 | PM | 2021.05 | Early-Life Immune System Maturation in Chickens Using a Synthetic Community of Cultured Gut Bacteria. | 1 | 0.5 | 0 | --- | ||
| Kabiswa, Winston et al. J Vet Med. (2018). 2018:9126467 30159337 | PM | 2018.00 | Phylogenetic Groups and Antimicrobial Susceptibility Patterns of Escherichia coli from Healthy Chicken in Eastern and Central Uganda. | 4 | 0.8 | 0 | --- | ||
| Wang, Gang et al. Animals (Basel). (2020). 10(2) 32098236 | PM | 2020.02 | Effect of Antimicrobial Peptide Microcin J25 on Growth Performance, Immune Regulation, and Intestinal Microbiota in Broiler Chickens Challenged with Escherichia coli and Salmonella. | 10 | 3.2 | 0 | --- | ||
| Wang, Kangping et al. Biol Trace Elem Res. (2012). 149(2):212-8 22528779 | PM | 2012.11 | Effect of dietary vanadium on intestinal microbiota in broiler. | 2 | 0.2 | 0 | --- | ||
| Cox, I Jane et al. Liver Int. (2020). 40(2):416-427 31544308 | PM | 2020.02 | Metabolomics and microbial composition increase insight into the impact of dietary differences in cirrhosis. | 3 | 1.0 | 0 | --- | ||
| Liu, Liying et al. Gut Pathog. (2018). 10:34 30087697 | PM | 2018.00 | Cecal microbiome profile altered by Salmonella enterica, serovar Enteritidis inoculation in chicken. | 13 | 2.5 | 5 | --- | ||
| Lee, Jun-Yeong et al. Curr Microbiol. (2016). 72(3):259-66 26613617 | PM | 2016.03 | Influence of Flaxseed Oil on Fecal Microbiota, Egg Quality and Fatty Acid Composition of Egg Yolks in Laying Hens. | 8 | 1.1 | 0 | --- | ||
| Oviedo-Rondón, E O et al. Poult Sci. (2006). 85(5):854-60 16673762 | PM | 2006.05 | Intestinal microbial ecology of broilers vaccinated and challenged with mixed Eimeria species, and supplemented with essential oil blends. | 16 | 1.0 | 3 | --- | ||
| Cai, Minmin et al. Environ Microbiol. (2018). 20(11):4051-4062 30318817 | PM | 2018.11 | Rapidly mitigating antibiotic resistant risks in chicken manure by Hermetia illucens bioconversion with intestinal microflora. | 6 | 1.4 | 0 | --- | ||
| Płowiec, Arkadiusz et al. Am J Vet Res. (2015). 76(11):975-82 26512543 | PM | 2015.11 | Effect of in ovo administration of inulin and Lactococcus lactis on immune-related gene expression in broiler chickens. | 14 | 1.9 | 6 | --- | ||
| Gong, Haojie et al. Poult Sci. (2021). 100(1):196-205 33357682 | PM | 2021.01 | Effect of benzoic acid on production performance, egg quality, intestinal morphology, and cecal microbial community of laying hens. | 2 | 0.9 | 0 | --- | ||
| Khan, Samiullah; Chousalkar, Kapil K Anim Microbiome. (2021). 3(1):50 34315535 | PM | 2021.07 | Functional enrichment of gut microbiome by early supplementation of Bacillus based probiotic in cage free hens: a field study. | 0 | 0.0 | 0 | --- | ||
| Meropol, Sharon B; Edwards, Amy Birth Defects Res C Embryo Today. (2015). 105(4):228-39 26663826 | PM | R | 2015.12 | Development of the infant intestinal microbiome: A bird's eye view of a complex process. | 10 | 1.4 | 0 | --- | |
| Sun, H et al. Poult Sci. (2013). 92(2):392-401 23300306 | PM | C | 2013.02 | Molecular analysis of intestinal bacterial microbiota of broiler chickens fed diets containing fermented cottonseed meal. | 17 | 1.7 | 4 | --- | |
| Zhou, Changming et al. Ecotoxicol Environ Saf. (2020). 188:109920 31733937 | PM | 2020.01 | Effects of subchronic exposure of mercuric chloride on intestinal histology and microbiota in the cecum of chicken. | 3 | 0.9 | 1 | --- | ||
| Laptev, Georgi Yu et al. Animals (Basel). (2021). 11(2) 33535430 | PM | 2021.02 | Effects of Essential Oils-Based Supplement and Salmonella Infection on Gene Expression, Blood Parameters, Cecal Microbiome, and Egg Production in Laying Hens. | 1 | 0.5 | 0 | --- | ||
| Ma, Youbiao et al. Sci Rep. (2018). 8(1):15358 30337568 | PM | 2018.10 | Supplemental Bacillus subtilis DSM 32315 manipulates intestinal structure and microbial composition in broiler chickens. | 32 | 7.2 | 8 | --- | ||
| Elokil, Abdelmotaleb A et al. Animals (Basel). (2020). 10(5) 32455745 | PM | 2020.05 | Investigation of the Impacts of Antibiotic Exposure on the Diversity of the Gut Microbiota in Chicks. | 4 | 1.4 | 1 | --- | ||
| Abouelezz, K et al. Animal. (2019). 13(10):2216-2222 30914073 | PM | 2019.10 | Nutritional impacts of dietary oregano and Enviva essential oils on the performance, gut microbiota and blood biochemicals of growing ducks. | 7 | 2.0 | 1 | --- | ||
| Yang, C M et al. Poult Sci. (2012). 91(9):2121-9 22912445 | PM | C | 2012.09 | Effects of probiotic, Clostridium butyricum, on growth performance, immune function, and cecal microflora in broiler chickens. | 54 | 5.1 | 8 | --- | |
| Wegl, Gertrude et al. Front Microbiol. (2021). 12:627539 33708184 | PM | 2021.00 | Toward Best Practice in Livestock Microbiota Research: A Comprehensive Comparison of Sample Storage and DNA Extraction Strategies. | 1 | 0.4 | 0 | --- | ||
| Li, Wei et al. Food Res Int. (2020). 136:109302 32846514 | PM | 2020.10 | In vitro and in vivo antioxidant activity of eucalyptus leaf polyphenols extract and its effect on chicken meat quality and cecum microbiota. | 2 | 0.8 | 0 | --- | ||
| Pender, Chasity M et al. Poult Sci. (2017). 96(5):1052-1062 28158826 | PM | 2017.05 | In ovo supplementation of probiotics and its effects on performance and immune-related gene expression in broiler chicks. | 20 | 3.4 | 5 | --- | ||
| Mutlu, Mehmet et al. Turk J Pediatr. (2018). 60(5):482-487 30968632 | PM | 2018.00 | Effects of Lactobacillus rhamnosus GG as a probiotic on neonatal hyperbilirubinemia. | 1 | 0.2 | 0 | --- | ||
| Vasaï, Florian et al. FEMS Microbiol Ecol. (2014). 87(1):204-16 24102552 | PM | 2014.01 | Overfeeding and genetics affect the composition of intestinal microbiota in Anas platyrhynchos (Pekin) and Cairina moschata (Muscovy) ducks. | 16 | 1.7 | 9 | --- | ||
| Angelakis, Emmanouil Microb Pathog. (2017). 106:162-170 27836763 | PM | R | 2017.05 | Weight gain by gut microbiota manipulation in productive animals. | 40 | 6.9 | 8 | --- | |
| Leekitcharoenphon, Pimlapas et al. Sci Rep. (2021). 11(1):15108 34301966 | PM | 2021.07 | Genomic evolution of antimicrobial resistance in Escherichia coli. | 0 | 0.0 | 0 | --- | ||
| Regassa, Alemu; Nyachoti, Charles M Anim Nutr. (2018). 4(3):305-310 30175259 | PM | R | 2018.09 | Application of resistant starch in swine and poultry diets with particular reference to gut health and function. | 11 | 2.4 | 0 | --- | |
| Qiao, Hongxing et al. AMB Express. (2018). 8(1):70 29713833 | PM | 2018.04 | Astragalus affects fecal microbial composition of young hens as determined by 16S rRNA sequencing. | 10 | 2.0 | 3 | --- | ||
| Janczyk, P et al. Poult Sci. (2009). 88(11):2324-32 19834082 | PM | 2009.11 | Microbial community composition of the crop and ceca contents of laying hens fed diets supplemented with Chlorella vulgaris. | 24 | 1.8 | 8 | --- | ||
| Dobrowolski, P et al. Animal. (2019). 13(12):2773-2781 31113501 | PM | 2019.12 | Structural changes in the small intestine of female turkeys receiving a probiotic preparation are dose and region dependent. | 4 | 1.2 | 0 | --- | ||
| Parois, Severine et al. Behav Brain Res. (2017). 331:47-53 28502731 | PM | 2017.07 | The influence of a probiotic supplementation on memory in quail suggests a role of gut microbiota on cognitive abilities in birds. | 12 | 2.1 | 5 | --- | ||
| Bortoluzzi, C et al. Poult Sci. (2017). 96(11):3981-3993 29050425 | PM | 2017.09 | Sodium butyrate improved performance while modulating the cecal microbiota and regulating the expression of intestinal immune-related genes of broiler chickens. | 25 | 4.5 | 8 | --- | ||
| Yasuda, A et al. Int J Immunopathol Pharmacol. 23(3):727-35 20943042 | PM | 2010.00 | Dietary supplementation with fructooligosaccharides attenuates airway inflammation related to house dust mite allergen in mice. | 4 | 0.3 | 0 | --- | ||
| Massacci, Francesca Romana et al. Microorganisms. (2019). 7(12) 31766507 | PM | 2019.11 | Dietary Saccharomyces cerevisiae boulardii CNCM I-1079 Positively Affects Performance and Intestinal Ecosystem in Broilers during a Campylobacter jejuni Infection. | 6 | 1.8 | 3 | --- | ||
| Kim, G-B et al. Poult Sci. (2011). 90(1):75-82 21177446 | PM | C | 2011.01 | Effect of dietary prebiotic supplementation on the performance, intestinal microflora, and immune response of broilers. | 47 | 3.9 | 9 | --- | |
| Yildiz, Sedat et al. J Gastrointestin Liver Dis. (2016). 25(4):489-497 27981305 | PM | 2016.12 | Association of Enteric Protist Blastocystis spp. and Gut Microbiota with Hepatic Encephalopathy. | 7 | 1.1 | 0 | --- | ||
| Kikusato, Motoi Anim Biosci. (2021). 34(3):345-353 33705621 | PM | 2021.03 | Phytobiotics to improve health and production of broiler chickens: functions beyond the antioxidant activity. | 2 | 1.0 | 1 | --- | ||
| Munyaka, P M et al. Poult Sci. (2016). 95(3):528-40 26574039 | PM | 2016.03 | Impact of combined β-glucanase and xylanase enzymes on growth performance, nutrients utilization and gut microbiota in broiler chickens fed corn or wheat-based diets. | 29 | 4.1 | 9 | --- | ||
| Latorre, J D et al. Poult Sci. (2017). 96(8):2728-2735 28419329 | PM | 2017.08 | Effects of the inclusion of a Bacillus direct-fed microbial on performance parameters, bone quality, recovered gut microflora, and intestinal morphology in broilers consuming a grower diet containing corn distillers dried grains with solubles. | 10 | 1.8 | 4 | --- | ||
| Ma, Xinxin et al. Vet Microbiol. (2017). 207:195-204 28757024 | PM | 2017.08 | 16S rRNA genes Illumina sequencing revealed differential cecal microbiome in specific pathogen free chickens infected with different subgroup of avian leukosis viruses. | 13 | 2.3 | 6 | --- | ||
| Mei, Xueran et al. Appl Environ Microbiol. (2021). 87(24):e0168121 34613752 | PM | 2021.11 | Florfenicol Enhances Colonization of a Salmonella enterica Serovar Enteritidis floR Mutant with Major Alterations to the Intestinal Microbiota and Metabolome in Neonatal Chickens. | 0 | 0.0 | 0 | --- | ||
| Hagbø, Mari et al. Pediatr Res. (2020). 88(1):57-65 31261372 | PM | 2020.07 | Experimental support for multidrug resistance transfer potential in the preterm infant gut microbiota. | 5 | 1.9 | 0 | --- | ||
| Yang, Guiqin et al. Anim Sci J. (2019). 90(3):412-422 30656801 | PM | 2019.03 | Spatial variations in intestinal skatole production and microbial composition in broilers. | 3 | 0.8 | 1 | --- | ||
| Seidlerova, Zuzana et al. Microorganisms. (2020). 8(5) 32443788 | PM | 2020.05 | Environmental Impact on Differential Composition of Gut Microbiota in Indoor Chickens in Commercial Production and Outdoor, Backyard Chickens. | 0 | 0.0 | 0 | --- | ||
| Hsu, Tsung-Hsien et al. Nutrients. (2018). 10(11) 30424538 | PM | 2018.11 | Supplementation with Beef Extract Improves Exercise Performance and Reduces Post-Exercise Fatigue Independent of Gut Microbiota. | 3 | 0.7 | 0 | --- | ||
| Brisbin, J T et al. Benef Microbes. (2012). 3(3):205-10 22968409 | PM | 2012.09 | Differential cytokine expression in T-cell subsets of chicken caecal tonsils co-cultured with three species of Lactobacillus. | 10 | 1.0 | 4 | --- | ||
| Latorre, Juan D et al. Front Vet Sci. (2016). 3:95 27812526 | PM | 2016.00 | Evaluation and Selection of Bacillus Species Based on Enzyme Production, Antimicrobial Activity, and Biofilm Synthesis as Direct-Fed Microbial Candidates for Poultry. | 21 | 2.9 | 2 | --- | ||
| Wu, Yuqin et al. Front Microbiol. (2021). 12:683905 34122394 | PM | 2021.00 | Metabolome and Microbiota Analysis Reveals the Conducive Effect of Pediococcus acidilactici BCC-1 and Xylan Oligosaccharides on Broiler Chickens. | 0 | 0.0 | 0 | --- | ||
| Siegerstetter, Sina-Catherine et al. Appl Environ Microbiol. (2018). 84(2) 29101192 | PM | 2018.01 | Fecal Microbiota Transplant from Highly Feed-Efficient Donors Shows Little Effect on Age-Related Changes in Feed-Efficiency-Associated Fecal Microbiota from Chickens. | 18 | 3.5 | 7 | --- | ||
| Sunkara, Lakshmi T et al. PLoS One. (2012). 7(11):e49558 23166711 | PM | 2012.00 | Modulation of antimicrobial host defense peptide gene expression by free fatty acids. | 46 | 4.1 | 7 | --- | ||
| Looft, Torey et al. Front Microbiol. (2014). 5:276 24959163 | PM | 2014.00 | Carbadox has both temporary and lasting effects on the swine gut microbiota. | 34 | 3.7 | 2 | --- | ||
| BEAVER, M H; WOSTMANN, B S Br J Pharmacol Chemother. (1962). 19:385-93 13970018 | PM | 1962.12 | Histamine and 5-hydroxytryptamine in the intestinal tract of germ-free animals, animals harbouring one microbial species and conventional animals. | 13 | 0.2 | 0 | --- | ||
| Sun, Baosheng et al. Front Vet Sci. (2021). 8:666535 34277754 | PM | 2021.00 | The Development of the Gut Microbiota and Short-Chain Fatty Acids of Layer Chickens in Different Growth Periods. | 1 | 0.4 | 1 | --- | ||
| Vermeulen, K et al. Vet Microbiol. (2017). 198:64-71 28062009 | PM | 2017.01 | Reduced particle size wheat bran is butyrogenic and lowers Salmonella colonization, when added to poultry feed. | 9 | 1.5 | 3 | --- | ||
| Huff, G R et al. Poult Sci. (2015). 94(5):918-26 25743418 | PM | C | 2015.05 | Efficacy of a novel prebiotic and a commercial probiotic in reducing mortality and production losses due to cold stress and Escherichia coli challenge of broiler chicks 1. | 5 | 0.6 | 0 | --- | |
| Zhang, Yingying et al. J Sci Food Agric. (2020). 100(3):1274-1284 31721238 | PM | 2020.02 | Dietary resistant starch modifies the composition and function of caecal microbiota of broilers. | 8 | 2.6 | 3 | --- | ||
| Wang, Yibing et al. Animals (Basel). (2020). 10(10) 33053884 | PM | 2020.10 | Potential Effects of Acidifier and Amylase as Substitutes for Antibiotic on the Growth Performance, Nutrient Digestion and Gut Microbiota in Yellow-Feathered Broilers. | 1 | 0.4 | 0 | --- | ||
| Guo, Lili et al. Anim Sci J. (2019). 90(6):747-756 30989748 | PM | 2019.06 | Effects of the stems and leaves of Astragalus membranaceus on growth performance, immunological parameters, antioxidant status, and intestinal bacteria of quail. | 4 | 1.1 | 1 | --- | ||
| Wang, Shuai et al. Int J Mol Sci. (2016). 17(5) 27153059 | PM | R | 2016.05 | Antimicrobial Peptides as Potential Alternatives to Antibiotics in Food Animal Industry. | 69 | 10.1 | 4 | --- | |
| Lyu, Wentao et al. Front Vet Sci. (2021). 8:609348 33869315 | PM | 2021.00 | Cecal Microbiota Modulates Fat Deposition in Muscovy Ducks. | 3 | 1.3 | 2 | --- | ||
| Wu, Che et al. Poult Sci. (2018). 97(11):3837-3846 29945221 | PM | 2018.11 | Effects of dietary yeast nucleotides supplementation on intestinal barrier function, intestinal microbiota, and humoral immunity in specific pathogen-free chickens. | 7 | 1.6 | 0 | --- | ||
| Cheled-Shoval, S L et al. Poult Sci. (2011). 90(10):2301-10 21934014 | PM | 2011.10 | The effect of in ovo administration of mannan oligosaccharide on small intestine development during the pre- and posthatch periods in chickens. | 29 | 2.5 | 3 | --- | ||
| Vollmar, Solveig et al. G3 (Bethesda). (2020). 10(7):2553-2562 32471941 | PM | 2020.07 | The Gut Microbial Architecture of Efficiency Traits in the Domestic Poultry Model Species Japanese Quail (Coturnix japonica) Assessed by Mixed Linear Models. | 7 | 2.6 | 2 | --- | ||
| Siddik, Muhammad A B et al. Fish Shellfish Immunol. (2020). 97:465-473 31866445 | PM | 2020.02 | Influence of fish protein hydrolysate produced from industrial residues on antioxidant activity, cytokine expression and gut microbial communities in juvenile barramundi Lates calcarifer. | 8 | 2.6 | 1 | --- | ||
| Liao, Xiudong et al. Poult Sci. (2020). 99(11):5883-5895 33142506 | PM | 2020.11 | The relationship among gut microbiota, short-chain fatty acids, and intestinal morphology of growing and healthy broilers. | 11 | 4.7 | 3 | --- | ||
| Nazeer, N et al. Br Poult Sci. (2021). 62(5):672-685 33908289 | PM | R | 2021.10 | Antimicrobial peptides as an alternative to relieve antimicrobial growth promoters in poultry. | 0 | 0.0 | 0 | --- | |
| Hosseini, S A; Meimandipour, A Br Poult Sci. (2018). 59(6):669-678 30196710 | PM | 2018.12 | Feeding broilers with thyme essential oil loaded in chitosan nanoparticles: an efficient strategy for successful delivery. | 2 | 0.5 | 0 | --- | ||
| San Juan, Priscilla A et al. Anim Microbiome. (2021). 3(1):48 34238378 | PM | 2021.07 | Captivity reduces diversity and shifts composition of the Brown Kiwi microbiome. | 2 | 1.2 | 0 | --- | ||
| Humam, Ali Merzza et al. Animals (Basel). (2019). 9(9) 31480791 | PM | 2019.09 | Effects of Feeding Different Postbiotics Produced by Lactobacillus plantarum on Growth Performance, Carcass Yield, Intestinal Morphology, Gut Microbiota Composition, Immune Status, and Growth Gene Expression in Broilers under Heat Stress. | 19 | 5.4 | 2 | --- | ||
| Zhang, J-M et al. J Appl Microbiol. (2021). 131(2):913-924 33263216 | PM | 2021.08 | Different effects of probiotics and antibiotics on the composition of microbiota, SCFAs concentrations and FFAR2/3 mRNA expression in broiler chickens. | 3 | 1.9 | 0 | --- | ||
| Pishnian, Zeinab et al. Gut Pathog. (2019). 11:2 30728861 | PM | 2019.00 | Prevalence and molecular determinants of colistin resistance among commensal Enterobacteriaceae isolated from poultry in northwest of Iran. | 12 | 2.8 | 0 | --- | ||
| Zhu, Cui et al. Front Microbiol. (2020). 11:585623 33193234 | PM | 2020.00 | Effect of Heat-Inactivated Compound Probiotics on Growth Performance, Plasma Biochemical Indices, and Cecal Microbiome in Yellow-Feathered Broilers. | 1 | 0.3 | 0 | --- | ||
| Pascual, A et al. J Anim Sci Biotechnol. (2020). 11:40 32377338 | PM | 2020.00 | Effect of dietary supplementation with yeast cell wall extracts on performance and gut response in broiler chickens. | 4 | 1.2 | 0 | --- | ||
| Taha, Ayman E et al. J Anim Physiol Anim Nutr (Berl). (2019). 103(5):1474-1483 31368211 | PM | C | 2019.09 | Effects of supplementing broiler diets with coriander seed powder on growth performance, blood haematology, ileum microflora and economic efficiency. | 2 | 0.6 | 0 | --- | |
| Pogány Simonová, Monika et al. Animals (Basel). (2020). 10(7) 32674281 | PM | R | 2020.07 | Autochtonous Strain Enterococcus faecium EF2019(CCM7420), Its Bacteriocin and Their Beneficial Effects in Broiler Rabbits-A Review. | 4 | 1.5 | 0 | --- | |
| Huang, Guangping et al. Infect Immun. (2018). 86(5) 29440368 | PM | 2018.05 | Influence of Eimeria falciformis Infection on Gut Microbiota and Metabolic Pathways in Mice. | 14 | 2.9 | 3 | --- | ||
| Pogány Simonová, Monika et al. Animals (Basel). (2020). 10(1) 31936774 | PM | 2020.01 | Can Enterocin M in Combination with Sage Extract Have Beneficial Effect on Microbiota, Blood Biochemistry, Phagocytic Activity and Jejunal Morphometry in Broiler Rabbits? | 2 | 0.6 | 1 | --- | ||
| Tavella, Alexander et al. BMC Vet Res. (2018). 14(1):343 30424747 | PM | 2018.11 | Isolation of Streptococcus agalactiae in a female llama (Lama glama) in South Tyrol (Italy). | 3 | 0.7 | 0 | --- | ||
| La-Ongkham, Orawan et al. Arch Microbiol. (2015). 197(4):561-73 25644242 | PM | 2015.05 | Distinct gut microbiota of healthy children from two different geographic regions of Thailand. | 20 | 2.6 | 1 | --- | ||
| Witzig, Maren et al. PLoS One. (2015). 10(11):e0143442 26588075 | PM | 2015.00 | Spatial Variation of the Gut Microbiota in Broiler Chickens as Affected by Dietary Available Phosphorus and Assessed by T-RFLP Analysis and 454 Pyrosequencing. | 29 | 3.5 | 10 | --- | ||
| Wu, Shengru et al. Poult Sci. (2019). 98(2):828-841 30169708 | PM | 2019.02 | Effects of glucose oxidase on growth performance, gut function, and cecal microbiota of broiler chickens. | 16 | 3.9 | 3 | --- | ||
| Ding, Sujuan et al. Anim Nutr. (2021). 7(1):24-30 33997328 | PM | R | 2021.03 | The impact of probiotics on gut health via alternation of immune status of monogastric animals. | 2 | 1.0 | 0 | --- | |
| Hu, Yan et al. Front Microbiol. (2019). 10:2948 31993028 | PM | 2019.00 | Selectived and Reshaped Early Dominant Microbial Community in the Cecum With Similar Proportions and Better Homogenization and Species Diversity Due to Organic Acids as AGP Alternatives Mediate Their Effects on Broilers Growth. | 22 | 5.2 | 5 | --- | ||
| Rebolé, A et al. Poult Sci. (2010). 89(2):276-86 20075280 | PM | C | 2010.02 | Effects of inulin and enzyme complex, individually or in combination, on growth performance, intestinal microflora, cecal fermentation characteristics, and jejunal histomorphology in broiler chickens fed a wheat- and barley-based diet. | 19 | 1.5 | 6 | --- | |
| Engberg, R M et al. Poult Sci. (2004). 83(6):925-38 15206619 | PM | 2004.06 | Influence of whole wheat and xylanase on broiler performance and microbial composition and activity in the digestive tract. | 40 | 2.1 | 8 | --- | ||
| Borda-Molina, D et al. Poult Sci. (2019). 98(7):2906-2918 30768134 | PM | 2019.07 | Effects of protease and phytase supplements on small intestinal microbiota and amino acid digestibility in broiler chickens. | 14 | 3.8 | 1 | --- | ||
| Cuperus, Tryntsje et al. PLoS One. (2018). 13(6):e0198188 29870564 | PM | 2018.00 | Immunomodulation and effects on microbiota after in ovo administration of chicken cathelicidin-2. | 2 | 0.4 | 1 | --- | ||
| Dai, Dong et al. Front Microbiol. (2020). 11:618144 33519778 | PM | 2020.00 | Organic Acids as Alternatives for Antibiotic Growth Promoters Alter the Intestinal Structure and Microbiota and Improve the Growth Performance in Broilers. | 10 | 3.1 | 2 | --- | ||
| Videvall, Elin et al. Microbiome. (2020). 8(1):147 33046114 | PM | 2020.10 | Early-life gut dysbiosis linked to juvenile mortality in ostriches. | 3 | 1.2 | 0 | --- | ||
| Hall, H N et al. Anim Microbiome. (2021). 3(1):2 33499989 | PM | 2021.01 | Oregano essential oil improves piglet health and performance through maternal feeding and is associated with changes in the gut microbiota. | 2 | 0.9 | 0 | --- | ||
| Simon, K et al. Poult Sci. (2016). 95(7):1543-1554 26976906 | PM | 2016.07 | Long-term effects of early life microbiota disturbance on adaptive immunity in laying hens. | 25 | 3.7 | 9 | --- | ||
| Volf, Jiri et al. PLoS One. 11(9):e0163932 27685470 | PM | 2016.00 | Transient and Prolonged Response of Chicken Cecum Mucosa to Colonization with Different Gut Microbiota. | 14 | 1.9 | 7 | --- | ||
| Wilson, K M et al. Poult Sci. (2019). 98(11):5949-5960 31298298 | PM | 2019.11 | Evaluation of the impact of in ovo administered bacteria on microbiome of chicks through 10 days of age. | 15 | 4.5 | 4 | --- | ||
| Simon, K et al. Poult Sci. (2014). 93(12):3017-27 25306458 | PM | 2014.12 | Development of ileal cytokine and immunoglobulin expression levels in response to early feeding in broilers and layers. | 11 | 1.3 | 1 | --- | ||
Food Funct. (2019). 10(5):2340-2346 31020296 | PM | 2019.05 | Effect of dietary stevioside supplementation on growth performance, nutrient digestibility, serum parameters, and intestinal microflora in broilers. | 5 | 1.3 | 0 | --- | ||
| Reuben, Rine Christopher et al. Sci Rep. (2021). 11(1):8885 33903662 | PM | 2021.04 | Novel multi-strain probiotics reduces Pasteurella multocida induced fowl cholera mortality in broilers. | 1 | 0.5 | 0 | --- | ||
| Breban, Maxime et al. Curr Opin Rheumatol. (2021). 33(4):341-347 33973546 | PM | R | 2021.07 | Intestinal dysbiosis in spondyloarthritis - chicken or egg? | 0 | 0.0 | 0 | --- | |
| Singer, Michael A Comp Biochem Physiol B Biochem Mol Biol. (2003). 134(4):543-58 12670782 | PM | R | 2003.04 | Do mammals, birds, reptiles and fish have similar nitrogen conserving systems? | 18 | 0.9 | 1 | --- | |
| Kerr, K R et al. J Nutr Sci. (2014). 3:e22 26101591 | PM | 2014.00 | Faecal microbiota of domestic cats fed raw whole chicks v. an extruded chicken-based diet. | 12 | 1.3 | 0 | --- | ||
| Van Hecke, Thomas et al. Food Res Int. (2021). 142:110203 33773678 | PM | 2021.04 | In vitro and in vivo digestion of red cured cooked meat: oxidation, intestinal microbiota and fecal metabolites. | 1 | 0.5 | 0 | --- | ||
| MahmoudAl-Atiyat, Raed Pak J Biol Sci. (2017). 20(8):372-381 29023057 | PM | 2017.00 | Dynamic of Bacterial Diversity in Ileum Digesta Under Water Supplements of Antibiotics and Probiotics. | 0 | 0.0 | 0 | --- | ||
| van Leeuwen, P et al. Br Poult Sci. (2004). 45(1):41-8 15115199 | PM | 2004.02 | Morphology of the small intestinal mucosal surface of broilers in relation to age, diet formulation, small intestinal microflora and performance. | 9 | 0.5 | 2 | --- | ||
| Jarma, Dayana et al. Sci Total Environ. (2021). 783:146872 33872913 | PM | 2021.08 | Faecal microbiota and antibiotic resistance genes in migratory waterbirds with contrasting habitat use. | 2 | 1.3 | 0 | --- | ||
| Tanga, Chrysantus M et al. Front Microbiol. (2021). 12:635881 33643270 | PM | 2021.00 | Organic Waste Substrates Induce Important Shifts in Gut Microbiota of Black Soldier Fly (Hermetia illucens L.): Coexistence of Conserved, Variable, and Potential Pathogenic Microbes. | 5 | 2.2 | 1 | --- | ||
| Murai, Atsushi et al. Anim Sci J. (2016). 87(2):257-65 26304689 | PM | R | 2016.02 | Oral antibiotics enhance antibody responses to keyhole limpet hemocyanin in orally but not muscularly immunized chickens. | 0 | 0.0 | 0 | --- | |
| Becattini, Simone; Pamer, Eric G Pathogens. (2017). 7(1) 29271903 | PM | R | 2017.12 | Multifaceted Defense against Listeria monocytogenes in the Gastro-Intestinal Lumen. | 4 | 0.8 | 0 | --- | |
| Adeyemi, Kazeem D et al. Trop Anim Health Prod. (2021). 53(3):365 34156587 | PM | C | 2021.06 | Influence of Crescentia cujete and Launaea taraxacifolia leaves on growth, immune indices, gut microbiota, blood chemistry, carcass, and meat quality in broiler chickens. | 0 | 0.0 | 0 | --- | |
| Albracht-Schulte, Kembra et al. Adv Nutr. (2021). 12(1):102-114 32761179 | PM | S | 2021.02 | Systematic Review of Beef Protein Effects on Gut Microbiota: Implications for Health. | 3 | 1.4 | 0 | --- | |
| Lamas, Alexandre et al. Antibiotics (Basel). (2019). 8(4) 31847278 | PM | 2019.12 | Short Chain Fatty Acids Commonly Produced by Gut Microbiota Influence Salmonella enterica Motility, Biofilm Formation, and Gene Expression. | 17 | 5.2 | 0 | --- | ||
| Davidson, Gabrielle L et al. Sci Rep. (2020). 10(1):20783 33247162 | PM | 2020.11 | Diet induces parallel changes to the gut microbiota and problem solving performance in a wild bird. | 5 | 2.1 | 0 | --- | ||
| Yang, Hong et al. Anim Sci J. (2021). 92(1):e13554 33938087 | PM | 2021.01 | Effects of fermented Yupingfeng on intramuscular fatty acids and ruminal microbiota in Qingyuan black goats. | 0 | 0.0 | 0 | --- | ||
| Shang, Weiping et al. Curr Microbiol. (2020). 77(11):3731-3737 32940730 | PM | 2020.11 | The Composition of Gut Microbiota Community Structure of Jankowski's Bunting (Emberiza jankowskii). | 0 | 0.0 | 0 | --- | ||
| Eyupoglu, Nesrin Damla et al. J Clin Endocrinol Metab. (2020). 105(12) 32860695 | PM | 2020.12 | Gut Microbiota and Oral Contraceptive Use in Overweight and Obese Patients with Polycystic Ovary Syndrome. | 2 | 0.9 | 0 | --- | ||
| Wu, Shengru et al. J Anim Sci Biotechnol. (2020). 11:61 32551109 | PM | 2020.00 | A novel apidaecin Api-PR19 synergizes with the gut microbial community to maintain intestinal health and promote growth performance of broilers. | 3 | 0.9 | 0 | --- | ||
| Eeckhaut, Venessa et al. Front Microbiol. (2016). 7:1416 27708624 | PM | 2016.00 | The Probiotic Butyricicoccus pullicaecorum Reduces Feed Conversion and Protects from Potentially Harmful Intestinal Microorganisms and Necrotic Enteritis in Broilers. | 41 | 5.7 | 5 | --- | ||
| Rostami, Farhad et al. Poult Sci. (2015). 94(9):2202-9 26217029 | PM | 2015.09 | Effect of Scrophularia striata and Ferulago angulata, as alternatives to virginiamycin, on growth performance, intestinal microbial population, immune response, and blood constituents of broiler chickens. | 6 | 0.8 | 2 | --- | ||
| Wang, Wen et al. Arch Microbiol. (2020). 202(5):983-993 31901964 | PM | 2020.07 | Characterization of the gut microbiome of black-necked cranes (Grus nigricollis) in six wintering areas in China. | 6 | 2.2 | 1 | --- | ||
| Yan, S Steve; Gilbert, Jeffrey M Adv Drug Deliv Rev. (2004). 56(10):1497-521 15191795 | PM | R | 2004.06 | Antimicrobial drug delivery in food animals and microbial food safety concerns: an overview of in vitro and in vivo factors potentially affecting the animal gut microflora. | 6 | 0.3 | 0 | --- | |
| Poorghasemi, Monireh et al. J Poult Sci. (2017). 54(4):263-270 32908435 | PM | 2017.10 | Effect of Dietary Inclusion of Lemon Balm (Melissa Officinalis L.) Extract on Performance, Gut Microflora, Blood Parameters, Immunity and Carcass Traits of Broilers. | 1 | 0.2 | 0 | --- | ||
| Santos, F B O et al. Poult Sci. (2008). 87(3):405-20 18281566 | PM | 2008.03 | Influence of housing system, grain type, and particle size on Salmonella colonization and shedding of broilers fed triticale or corn-soybean meal diets. | 9 | 0.6 | 1 | --- | ||
| Cao, G T et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(2):e909-e917 29314285 | PM | C | 2018.04 | Modulation of broilers' caecal microflora and metabolites in response to a potential probiotic Bacillus amyloliquefaciens. | 9 | 1.8 | 2 | --- | |
| Falker-Gieske, Clemens et al. BMC Genomics. (2020). 21(1):595 32854615 | PM | 2020.08 | Analysis of the brain transcriptome in lines of laying hens divergently selected for feather pecking. | 4 | 1.5 | 0 | --- | ||
| Jha, Rajesh et al. Front Vet Sci. (2019). 6:48 30886850 | PM | R | 2019.00 | Dietary Fiber and Intestinal Health of Monogastric Animals. | 51 | 12.0 | 7 | --- | |
| Pavlova, I et al. J Vet Pharmacol Ther. (2015). 38(6):549-55 25881712 | PM | 2015.12 | Effect of probiotics on enrofloxacin disposition in gastrointestinal tract of poultry. | 2 | 0.3 | 0 | --- | ||
| Yu, Yang et al. J Appl Microbiol. (2022). 132(1):155-166 34133828 | PM | 2022.01 | Clostridium butyricum alone or combined with 1, 25-dihydroxyvitamin D3 improved early-stage broiler health by modulating intestinal flora. | 0 | 0.0 | 0 | --- | ||
| Kulshreshtha, Garima et al. Poult Sci. (2014). 93(12):2991-3001 25352682 | PM | C | 2014.12 | Feed supplementation with red seaweeds, Chondrus crispus and Sarcodiotheca gaudichaudii, affects performance, egg quality, and gut microbiota of layer hens. | 24 | 2.9 | 0 | --- | |
| Yeh, Ruei Han et al. Poult Sci. (2018). 97(1):236-246 29126320 | PM | 2018.01 | Screening lactic acid bacteria to manufacture two-stage fermented feed and pelleting to investigate the feeding effect on broilers. | 8 | 1.5 | 0 | --- | ||
| Patra, Amlan Kumar; Kar, Indrajit J Anim Sci Technol. (2021). 63(2):211-247 33987600 | PM | R | 2021.03 | Heat stress on microbiota composition, barrier integrity, and nutrient transport in gut, production performance, and its amelioration in farm animals. | 0 | 0.0 | 0 | --- | |
| Mateos-Hernández, Lourdes et al. Vaccines (Basel). (2020). 8(2) 32517302 | PM | 2020.06 | Gut Microbiota Abrogates Anti-α-Gal IgA Response in Lungs and Protects against Experimental Aspergillus Infection in Poultry. | 4 | 1.5 | 0 | --- | ||
| Mir, Hayatte-Dounia et al. Psychoneuroendocrinology. (2020). 119:104750 32569990 | PM | 2020.09 | The gut microbiota metabolite indole increases emotional responses and adrenal medulla activity in chronically stressed male mice. | 8 | 3.2 | 0 | --- | ||
| Shao, Ting et al. Microb Biotechnol. (2020). 13(3):722-737 31758659 | PM | 2020.05 | Ethyl-N-dodecanoyl-l-arginate hydrochloride combats pathogens with low-resistance generation by membrane attack and modifies gut microbiota structure. | 0 | 0.0 | 0 | --- | ||
| van Krimpen, M M et al. Poult Sci. (2017). 96(9):3324-3337 28854752 | PM | 2017.09 | Effects of rye inclusion in grower diets on immune competence-related parameters and performance in broilers. | 6 | 1.1 | 0 | --- | ||
| Wisselink, H J et al. Poult Sci. (2017). 96(9):3068-3078 28595274 | PM | 2017.09 | Antibiotics in 16-day-old broilers temporarily affect microbial and immune parameters in the gut. | 8 | 1.5 | 2 | --- | ||
| Li, Bing et al. Poult Sci. (2018). 97(9):3156-3165 29846691 | PM | 2018.09 | The effect of inulin and wheat bran on intestinal health and microbiota in the early life of broiler chickens. | 7 | 1.6 | 2 | --- | ||
| Ruan, D et al. Poult Sci. (2020). 99(12):6935-6945 33248609 | PM | C | 2020.12 | Dietary L-arginine supplementation enhances growth performance, intestinal antioxidative capacity, immunity and modulates gut microbiota in yellow-feathered chickens. | 0 | 0.0 | 0 | --- | |
| Oh, Ju Kyoung et al. Asian-Australas J Anim Sci. (2017). 30(9):1332-1339 28423869 | PM | 2017.09 | Protective effects of Bacillus subtilis against Salmonella infection in the microbiome of Hy-Line Brown layers. | 7 | 1.3 | 2 | --- | ||
| Soliman, Essam S et al. Vet World. (2020). 13(9):1780-1797 33132589 | PM | 2020.09 | Prophylactic impact of nano-selenium on performance, carcasses quality, and tissues' selenium concentration using reversed-phase high-performance liquid chromatography during microbial challenge in broiler chickens. | 1 | 0.4 | 0 | --- | ||
| Hong, Yuxuan et al. Biomed Res Int. (2019). 2019:5431354 31687392 | PM | 2019.00 | Preliminary Study on the Effect of Bacillus amyloliquefaciens TL on Cecal Bacterial Community Structure of Broiler Chickens. | 10 | 2.4 | 1 | --- | ||
| Czerwiński, Jan et al. Arch Anim Nutr. (2012). 66(2):102-16 22641923 | PM | C | 2012.04 | Effects of sodium butyrate and salinomycin upon intestinal microbiota, mucosal morphology and performance of broiler chickens. | 22 | 2.0 | 5 | --- | |
| Cheng, Yeong-Hsiang et al. Animals (Basel). (2021). 11(5) 33925950 | PM | 2021.04 | Effect of Fermented Products Produced by Bacillus licheniformis on the Growth Performance and Cecal Microbial Community of Broilers under Coccidial Challenge. | 3 | 1.6 | 0 | --- | ||
| Zhang, Yu et al. Animals (Basel). (2021). 11(7) 34359193 | PM | 2021.07 | Absence of Circadian Rhythm in Fecal Microbiota of Laying Hens under Common Light. | 0 | 0.0 | 0 | --- | ||
| Wang, Wei-Wei et al. Front Microbiol. (2019). 10:1681 31396190 | PM | 2019.00 | Supplemental Plant Extracts From Flos lonicerae in Combination With Baikal skullcap Attenuate Intestinal Disruption and Modulate Gut Microbiota in Laying Hens Challenged by Salmonella pullorum. | 20 | 4.7 | 8 | --- | ||
| Markazi, Ashley et al. Poult Sci. (2018). 97(10):3510-3518 29982803 | PM | C | 2018.10 | Effects of drinking water synbiotic supplementation in laying hens challenged with Salmonella. | 10 | 2.3 | 0 | --- | |
| Le Roy, Caroline Ivanne et al. BMC Vet Res. (2019). 15(1):37 30683093 | PM | 2019.01 | Antibiotic treatment triggers gut dysbiosis and modulates metabolism in a chicken model of gastro-intestinal infection. | 16 | 3.8 | 3 | --- | ||
| Xing, Y et al. J Anim Sci. (2015). 93(7):3449-57 26440014 | PM | C | 2015.07 | Effects of dietary supplementation with lysine-yielding Bacillus subtilis on gut morphology, cecal microflora, and intestinal immune response of Linwu ducks. | 5 | 0.7 | 0 | --- | |
| Hidasi, Hilari Wanderley et al. J Zoo Wildl Med. (2013). 44(1):1-7 23505696 | PM | 2013.03 | Enterobacterial detection and Escherichia coli antimicrobial resistance in parrots seized from the illegal wildlife trade. | 5 | 0.5 | 0 | --- | ||
| Chalvon-Demersay, Tristan et al. Front Vet Sci. (2021). 8:663727 34113671 | PM | R | 2021.00 | Functional Amino Acids in Pigs and Chickens: Implication for Gut Health. | 1 | 0.4 | 0 | --- | |
| Flint, Annika et al. J Bacteriol. (2012). 194(2):334-45 22081390 | PM | 2012.01 | Cj1386 is an ankyrin-containing protein involved in heme trafficking to catalase in Campylobacter jejuni. | 24 | 2.1 | 0 | --- | ||
| Guo, L et al. Poult Sci. (1999). 78(1):24-31 10023742 | PM | 1999.01 | Use of arbitrarily primed polymerase chain reaction to study Salmonella ecology in a turkey production environment. | 1 | 0.0 | 0 | --- | ||
| Raheem, Abdul et al. Front Immunol. (2021). 12:616713 33897683 | PM | R | 2021.00 | Modulatory Effects of Probiotics During Pathogenic Infections With Emphasis on Immune Regulation. | 2 | 0.9 | 0 | --- | |
| Chen, Fang et al. J Anim Sci Biotechnol. (2021). 12(1):87 34365974 | PM | 2021.08 | Supplemental magnolol or honokiol attenuates adverse effects in broilers infected with Salmonella pullorum by modulating mucosal gene expression and the gut microbiota. | 0 | 0.0 | 0 | --- | ||
| Selim, Abu Sadeque Md et al. Appl Environ Microbiol. (2005). 71(8):4214-9 16085805 | PM | 2005.08 | Development and assessment of a real-time pcr assay for rapid and sensitive detection of a novel thermotolerant bacterium, Lactobacillus thermotolerans, in chicken feces. | 4 | 0.2 | 0 | --- | ||
| Wang, Zeneng et al. Eur Heart J. (2019). 40(7):583-594 30535398 | PM | C | 2019.02 | Impact of chronic dietary red meat, white meat, or non-meat protein on trimethylamine N-oxide metabolism and renal excretion in healthy men and women. | 100 | 24.5 | 1 | --- | |
| Pedroso, A A et al. Poult Sci. (2006). 85(4):747-52 16615359 | PM | C | 2006.04 | Intestinal bacterial community and growth performance of chickens fed diets containing antibiotics. | 27 | 1.6 | 11 | --- | |
| Liu, Yanan et al. Lipids. (2020). 55(6):585-598 32419184 | PM | 2020.11 | Synergistic Effect of Diacylglycerol and Vitamin D in Ameliorating Dextran Sodium Sulfate-Induced Colitis in Rats. | 1 | 0.4 | 0 | --- | ||
| Koponen, Kari K et al. Am J Clin Nutr. (2021). 114(2):605-616 34020448 | PM | 2021.08 | Associations of healthy food choices with gut microbiota profiles. | 4 | 2.5 | 0 | --- | ||
| Pagliai, Giuditta et al. Trials. (2020). 21(1):511 32517729 | PM | C | 2020.06 | Modulation of gut microbiota through nutritional interventions in Behçet's syndrome patients (the MAMBA study): study protocol for a randomized controlled trial. | 5 | 1.8 | 0 | --- | |
| Callaway, T R et al. Poult Sci. (2009). 88(2):298-302 19151343 | PM | 2009.02 | Evaluation of the bacterial diversity in cecal contents of laying hens fed various molting diets by using bacterial tag-encoded FLX amplicon pyrosequencing. | 36 | 2.6 | 8 | --- | ||
| Trevelline, Brian K et al. Proc Biol Sci. (2020). 287(1923):20192988 32183630 | PM | 2020.03 | A bird's-eye view of phylosymbiosis: weak signatures of phylosymbiosis among all 15 species of cranes. | 6 | 2.0 | 1 | --- | ||
| Cheled-Shoval, S L et al. Poult Sci. (2014). 93(3):636-44 24604857 | PM | 2014.03 | Differences in intestinal mucin dynamics between germ-free and conventionally reared chickens after mannan-oligosaccharide supplementation. | 13 | 1.4 | 2 | --- | ||
| Yang, Chongwu et al. Transl Anim Sci. (2021). 5(3):txab099 34222827 | PM | 2021.07 | Effects of encapsulated cinnamaldehyde on growth performance, intestinal digestive and absorptive functions, meat quality and gut microbiota in broiler chickens. | 0 | 0.0 | 0 | --- | ||
| Rodjan, Prawit et al. J Anim Physiol Anim Nutr (Berl). (2021) 33904625 | PM | 2021.04 | Effect of dietary coated granules containing garlic oil diallyl disulphide and diallyl trisulphide on performance, in vitro digestibility and gastrointestinal functionality in laying hens. | 0 | 0.0 | 0 | --- | ||
| Shang, H M et al. Br Poult Sci. (2010). 51(6):791-6 21161786 | PM | C | 2010.12 | Effects of inulin on performance, egg quality, gut microflora and serum and yolk cholesterol in laying hens. | 6 | 0.5 | 0 | --- | |
| Noval Rivas, Magali et al. J Allergy Clin Immunol. (2013). 131(1):201-12 23201093 | PM | 2013.01 | A microbiota signature associated with experimental food allergy promotes allergic sensitization and anaphylaxis. | 146 | 14.4 | 3 | --- | ||
| Shen, Qing et al. Anaerobe. (2010). 16(6):572-7 20934523 | PM | 2010.12 | A comparative in vitro investigation into the effects of cooked meats on the human faecal microbiota. | 24 | 2.0 | 1 | --- | ||
| Den Hartog, G et al. Benef Microbes. (2016). 7(5):677-685 27633172 | PM | 2016.11 | Intestinal immune maturation is accompanied by temporal changes in the composition of the microbiota. | 8 | 1.3 | 2 | --- | ||
| Perez, V G et al. Poult Sci. (2011). 90(5):958-64 21489939 | PM | C | 2011.05 | Effect of corn distillers dried grains with solubles and Eimeria acervulina infection on growth performance and the intestinal microbiota of young chicks. | 9 | 0.8 | 4 | --- | |
| Collier, C T et al. Antimicrob Agents Chemother. (2003). 47(10):3311-7 14506046 | PM | 2003.10 | Effects of tylosin on bacterial mucolysis, Clostridium perfringens colonization, and intestinal barrier function in a chick model of necrotic enteritis. | 16 | 0.8 | 2 | --- | ||
| Ott, Logan C et al. mSphere. (2020). 5(1) 31996415 | PM | 2020.01 | Mouse Genetic Background Affects Transfer of an Antibiotic Resistance Plasmid in the Gastrointestinal Tract. | 6 | 1.9 | 0 | --- | ||
| Williams, J et al. Br Poult Sci. (2008). 49(3):329-39 18568758 | PM | 2008.05 | The effects of fructo-oligosaccharides or whole wheat on the performance and digestive tract of broiler chickens. | 6 | 0.4 | 0 | --- | ||
| Upadhaya, S D et al. Poult Sci. (2016). 95(8):1894-7 27053626 | PM | 2016.08 | Probiotics in Salmonella-challenged Hy-Line brown layers. | 5 | 0.8 | 2 | --- | ||
| Cowieson, A J; Masey O'Neill, H V Br Poult Sci. (2013). 54(3):346-54 23650997 | PM | 2013.06 | Effects of exogenous xylanase on performance, nutrient digestibility and caecal thermal profiles of broilers given wheat-based diets. | 7 | 0.7 | 0 | --- | ||
| Pöppe, Judith et al. Eur J Microbiol Immunol (Bp). (2019). 9(2):35-41 31223494 | PM | 2019.06 | Minimum Inhibitory Concentration of Glyphosate and a Glyphosate-Containing Herbicide in Salmonella enterica Isolates Originating from Different Time Periods, Hosts, and Serovars. | 4 | 1.1 | 0 | --- | ||
| Smith, A H; Rehberger, T G Poult Sci. (2018). 97(4):1400-1411 29390100 | PM | 2018.04 | Bacteria and fungi in day-old turkeys vary among companies, collection periods, and breeder flocks. | 4 | 0.8 | 2 | --- | ||
| Zaytsoff, Sarah J M et al. Microorganisms. (2020). 8(10) 33019786 | PM | 2020.10 | Physiological Stress Mediated by Corticosterone Administration Alters Intestinal Bacterial Communities and Increases the Relative Abundance of Clostridium perfringens in the Small Intestine of Chickens. | 2 | 0.8 | 1 | --- | ||
| Camacho, Franciele et al. Mar Drugs. (2019). 17(6) 31141887 | PM | R | 2019.05 | Potential Industrial Applications and Commercialization of Microalgae in the Functional Food and Feed Industries: A Short Review. | 30 | 7.8 | 0 | --- | |
| Ma, Jing-E et al. Front Vet Sci. (2021). 8:693755 34660751 | PM | 2021.00 | Metagenomic Analysis Identifies Sex-Related Cecal Microbial Gene Functions and Bacterial Taxa in the Quail. | 0 | 0.0 | 0 | --- | ||
| Card, Roderick M et al. mBio. (2017). 8(4) 28720731 | PM | 2017.07 | An In Vitro Chicken Gut Model Demonstrates Transfer of a Multidrug Resistance Plasmid from Salmonella to Commensal Escherichia coli. | 21 | 3.7 | 2 | --- | ||
| Nguyen, H T T et al. Poult Sci. (2021). 100(8):101254 34174567 | PM | 2021.08 | Zinc hydroxychloride supplementation improves tibia bone development and intestinal health of broiler chickens. | 1 | 0.6 | 0 | --- | ||
| Wang, J et al. Poult Sci. (2021). 100(3):100853 33516473 | PM | 2021.03 | Effect of almond hulls as an alternative ingredient on broiler performance, nutrient digestibility, and cecal microbiota diversity. | 3 | 1.5 | 0 | --- | ||
| Chen, Jiun-Yu; Yu, Yu-Hsiang Poult Sci. (2021). 100(2):875-886 33518141 | PM | C | 2021.02 | Bacillus subtilis-fermented products ameliorate the growth performance and alter cecal microbiota community in broilers under lipopolysaccharide challenge. | 2 | 1.0 | 0 | --- | |
| Rimoldi, Simona et al. PLoS One. (2018). 13(3):e0193652 29509788 | PM | 2018.00 | Next generation sequencing for gut microbiome characterization in rainbow trout (Oncorhynchus mykiss) fed animal by-product meals as an alternative to fishmeal protein sources. | 23 | 4.4 | 3 | --- | ||
| Fuller, R; Jayne-Williams, D J Res Vet Sci. (1970). 11(4):363-7 5499321 | PM | 1970.07 | Resistance of the fowl (Gallus domesticus) to invasion by its intestinal flora. I. The effect of hormonal bursectomy on the invasiveness of the intestinal microflora of the fowl. | 1 | 0.0 | 0 | --- | ||
| Sofi, Francesco et al. Trials. (2019). 20(1):688 31815647 | PM | C | 2019.12 | Fecal microbiome as determinant of the effect of diet on colorectal cancer risk: comparison of meat-based versus pesco-vegetarian diets (the MeaTIc study). | 3 | 0.9 | 0 | --- | |
| Cao, Jian et al. Microbiome. (2020). 8(1):26 32122398 | PM | 2020.03 | Metagenomic analysis reveals the microbiome and resistome in migratory birds. | 18 | 6.0 | 1 | --- | ||
| Madej, J P et al. Poult Sci. (2015). 94(6):1209-19 25877410 | PM | 2015.06 | Effect of in ovo-delivered prebiotics and synbiotics on lymphoid-organs' morphology in chickens. | 27 | 3.5 | 5 | --- | ||
| Poole, T L et al. Poult Sci. (2004). 83(7):1099-105 15285499 | PM | 2004.07 | Competitive exclusion of a glycopeptide-resistant Enterococcus faecium in the presence of vancomycin but not equivalent concentrations of tylosin or gentamicin. | 0 | 0.0 | 0 | --- | ||
| Wu, D et al. J Anim Sci. (2017). 95(2):740-751 28380608 | PM | C | 2017.02 | Performance, intestinal microflora, and amino acid digestibility altered by exogenous enzymes in broilers fed wheat- or sorghum-based diets. | 0 | 0.0 | 0 | --- | |
| Wang, Zhong et al. Appl Environ Microbiol. (2012). 78(24):8795-802 23064348 | PM | 2012.12 | Identification and characterization of a bile salt hydrolase from Lactobacillus salivarius for development of novel alternatives to antibiotic growth promoters. | 30 | 2.9 | 1 | --- | ||
| Palomo, Gonzalo et al. Foodborne Pathog Dis. (2013). 10(2):171-6 23360170 | PM | 2013.02 | Dissemination of antimicrobial-resistant clones of Salmonella enterica among domestic animals, wild animals, and humans. | 3 | 0.3 | 0 | --- | ||
| Liu, Y L et al. Animal. (2020):1-10 32106900 | PM | 2020.02 | Effects of Bacillus subtilis and antibiotic growth promoters on the growth performance, intestinal function and gut microbiota of pullets from 0 to 6 weeks. | 4 | 1.3 | 1 | --- | ||
| Pietrzak, Elzbieta et al. Animals (Basel). (2020). 10(3) 32178295 | PM | 2020.03 | Splenic Gene Expression Signatures in Slow-Growing Chickens Stimulated in Ovo with Galactooligosaccharides and Challenged with Heat. | 6 | 2.0 | 0 | --- | ||
| Wang, Hesong et al. Front Microbiol. (2018). 9:49 29441047 | PM | 2018.00 | Probiotic Lactobacillus johnsonii BS15 Improves Blood Parameters Related to Immunity in Broilers Experimentally Infected with Subclinical Necrotic Enteritis. | 14 | 2.7 | 1 | --- | ||
| Wu, Q J et al. Poult Sci. (2013). 92(3):684-92 23436519 | PM | 2013.03 | Effects of clinoptilolite and modified clinoptilolite on the growth performance, intestinal microflora, and gut parameters of broilers. | 16 | 1.6 | 1 | --- | ||
| Wang, J P et al. Poult Sci. (2010). 89(7):1549-55 20548086 | PM | 2010.07 | Effects of phenyllactic acid on growth performance, intestinal microbiota, relative organ weight, blood characteristics, and meat quality of broiler chicks. | 13 | 1.0 | 1 | --- | ||
| Giannenas, Ilias et al. PLoS One. (2017). 12(1):e0169511 28046072 | PM | 2017.00 | Effects of Protease Addition and Replacement of Soybean Meal by Corn Gluten Meal on the Growth of Broilers and on the Environmental Performances of a Broiler Production System in Greece. | 3 | 0.5 | 1 | --- | ||
| Schäfers, Stephanie et al. Anim Nutr. (2018). 4(1):84-89 30167489 | PM | 2018.03 | Suitability of n-alkanes and chromium (III) oxide as digestibility markers in calves at the end of the milk feeding period supplemented with a prebiotic. | 2 | 0.4 | 0 | --- | ||
| Stanley, Dragana et al. PLoS One. (2014). 9(8):e104739 25167074 | PM | 2014.00 | Differential responses of cecal microbiota to fishmeal, Eimeria and Clostridium perfringens in a necrotic enteritis challenge model in chickens. | 67 | 7.2 | 27 | --- | ||
| Navedo, Juan G et al. Sci Total Environ. (2021). 777:146004 33689894 | PM | 2021.07 | Upraising a silent pollution: Antibiotic resistance at coastal environments and transference to long-distance migratory shorebirds. | 0 | 0.0 | 0 | --- | ||
| Chee, S H et al. Br Poult Sci. (2010). 51(5):677-85 21058072 | PM | 2010.10 | Functional interactions of manno-oligosaccharides with dietary threonine in chicken gastrointestinal tract. III. Feed passage rate. | 0 | 0.0 | 0 | --- | ||
| Kou, Honghong et al. Ecotoxicol Environ Saf. (2019). 183:109588 31450035 | PM | 2019.11 | Chronic lead exposure induces histopathological damage, microbiota dysbiosis and immune disorder in the cecum of female Japanese quails (Coturnix japonica). | 5 | 1.5 | 1 | --- | ||
| Röhe, I et al. Poult Sci. (2019) 31504865 | PM | 2019.08 | Effect of a "diluted" diet containing 10% lignocellulose on the gastrointestinal tract, intestinal microbiota, and excreta characteristics of dual purpose laying hens. | 0 | 0.0 | 0 | --- | ||
| Gong, Lixin et al. mSphere. (2021). 6(4):e0046721 34346703 | PM | 2021.08 | Seasonal Dietary Shifts Alter the Gut Microbiota of Avivorous Bats: Implication for Adaptation to Energy Harvest and Nutritional Utilization. | 0 | 0.0 | 0 | --- | ||
| Chaklader, Md Reaz et al. Sci Rep. (2021). 11(1):4997 33654188 | PM | 2021.03 | Supplementation of tuna hydrolysate and insect larvae improves fishmeal replacement efficacy of poultry by-product in Lates calcarifer (Bloch, 1790) juveniles. | 1 | 0.5 | 0 | --- | ||
| Zhou, Jian-Min et al. Front Microbiol. (2021). 12:635333 33692770 | PM | 2021.00 | Supplemental Xylooligosaccharide Modulates Intestinal Mucosal Barrier and Cecal Microbiota in Laying Hens Fed Oxidized Fish Oil. | 2 | 0.9 | 0 | --- | ||
| Konieczka, P; Smulikowska, S Animal. (2018). 12(6):1144-1153 29061211 | PM | 2018.06 | Viscosity negatively affects the nutritional value of blue lupin seeds for broilers. | 6 | 1.3 | 1 | --- | ||
| Slawinska, Anna et al. PLoS One. (2019). 14(2):e0212318 30811518 | PM | 2019.00 | Modulation of microbial communities and mucosal gene expression in chicken intestines after galactooligosaccharides delivery In Ovo. | 19 | 4.5 | 3 | --- | ||
| Engevik, Melinda A et al. Cell Physiol Biochem. (2013). 32(7):96-110 24429818 | PM | 2013.00 | Prebiotic properties of galursan HF 7K on mouse gut microbiota. | 3 | 0.3 | 0 | --- | ||
| He, Changqing et al. Front Microbiol. (2021). 12:706424 34603233 | PM | 2021.00 | Black Soldier Fly (Hermetia illucens) Larvae Meal Modulates Intestinal Morphology and Microbiota in Xuefeng Black-Bone Chickens. | 0 | 0.0 | 0 | --- | ||
| Mohammed, Ahmed et al. Animals (Basel). (2021). 11(2) 33562225 | PM | 2021.02 | Effect of a Synbiotic Supplement on Fear Response and Memory Assessment of Broiler Chickens Subjected to Heat Stress. | 1 | 0.5 | 0 | --- | ||
| Tan, Xian et al. J Anim Physiol Anim Nutr (Berl). (2019). 103(5):1503-1511 31144409 | PM | C | 2019.09 | Effect of chicken egg yolk immunoglobulins on serum biochemical profiles and intestinal bacterial populations in early-weaned piglets. | 0 | 0.0 | 0 | --- | |
| Stanley, Dragana et al. Appl Microbiol Biotechnol. (2012). 96(5):1361-9 22249719 | PM | 2012.12 | Intestinal microbiota associated with differential feed conversion efficiency in chickens. | 100 | 9.8 | 45 | --- | ||
| Tang, Dazhi et al. Poult Sci. (2020). 99(4):1847-1861 32241465 | PM | 2020.04 | The association between microbial community and ileal gene expression on intestinal wall thickness alterations in chickens. | 3 | 1.0 | 0 | --- | ||
| Mathers, Jeremy J et al. Environ Int. (2011). 37(5):991-1004 21435723 | PM | R | 2011.07 | Longer-duration uses of tetracyclines and penicillins in U.S. food-producing animals: Indications and microbiologic effects. | 12 | 1.0 | 0 | --- | |
| Wang, Y et al. Br Poult Sci. (2014). 55(3):403-8 24784175 | PM | C | 2014.00 | Effects of zinc-methionine on growth performance, intestinal flora and immune function in pigeon squabs. | 1 | 0.1 | 0 | --- | |
| Beaumont, Martin et al. Vet Res. (2021). 52(1):33 33632315 | PM | R | 2021.02 | Intestinal organoids in farm animals. | 12 | 5.8 | 0 | --- | |
| Xing, Si-Cheng et al. Environ Pollut. (2021). 274:116562 33545525 | PM | 2021.04 | Bacillus coagulans R11 consumption influenced the abundances of cecum antibiotic resistance genes in lead-exposed laying hens. | 1 | 0.5 | 0 | --- | ||
| Rakici, Erva et al. Acta Vet Hung. (2021). 69(3):223-233 34570716 | PM | 2021.09 | Determination and molecular analysis of antibiotic resistance in Gram-negative enteric bacteria isolated from Pelophylax sp. in the Eastern Black Sea Region. | 0 | 0.0 | 0 | --- | ||
| Wanzenböck, E et al. Animal. (2020). 14(6):1147-1155 31937375 | PM | 2020.06 | A diet containing native or fermented wheat bran does not interfere with natural microbiota of laying hens. | 2 | 0.7 | 1 | --- | ||
| Han, Gi Ppeum et al. Asian-Australas J Anim Sci. (2019). 32(11):1715-1724 31480206 | PM | 2019.11 | Analysis of excreta bacterial community after forced molting in aged laying hens. | 3 | 0.9 | 0 | --- | ||
| Lind, Torbjörn et al. BMC Public Health. (2019). 19(1):134 30704429 | PM | C | 2019.01 | Study protocol: optimized complementary feeding study (OTIS): a randomized controlled trial of the impact of a protein-reduced complementary diet based on Nordic foods. | 5 | 1.2 | 0 | --- | |
| Bilal, Muhammad et al. Poult Sci. (2021). 100(3):100871 33516480 | PM | 2021.03 | Effects of novel probiotic strains of Bacillus pumilus and Bacillus subtilis on production, gut health, and immunity of broiler chickens raised under suboptimal conditions. | 4 | 2.0 | 2 | --- | ||
| Liu, H W et al. J Anim Physiol Anim Nutr (Berl). (2018). 102(3):717-726 29119618 | PM | C | 2018.06 | Effects of chestnut tannins on intestinal morphology, barrier function, pro-inflammatory cytokine expression, microflora and antioxidant capacity in heat-stressed broilers. | 11 | 2.3 | 0 | --- | |
| Polansky, Ondrej et al. Appl Environ Microbiol. (2015). 82(5):1569-76 26712550 | PM | 2015.12 | Important Metabolic Pathways and Biological Processes Expressed by Chicken Cecal Microbiota. | 95 | 13.1 | 27 | --- | ||
| Wang, Han et al. Poult Sci. (2019). 98(12):6751-6760 31347675 | PM | 2019.12 | Effects of encapsulated essential oils and organic acids on laying performance, egg quality, intestinal morphology, barrier function, and microflora count of hens during the early laying period. | 12 | 3.7 | 2 | --- | ||
| Thøgersen, Rebekka et al. Metabolites. (2020). 10(2) 32041174 | PM | 2020.02 | Background Diet Influences TMAO Concentrations Associated with Red Meat Intake without Influencing Apparent Hepatic TMAO-Related Activity in a Porcine Model. | 6 | 1.9 | 0 | --- | ||
| Hu, Shuangfang et al. Int J Environ Res Public Health. (2021). 18(11) 34199383 | PM | 2021.06 | Dietary Factors of blaNDM Carriage in Health Community Population: A Cross-Sectional Study. | 0 | 0.0 | 0 | --- | ||
| Röhe, I et al. Poult Sci. (2020). 99(1):310-319 32416816 | PM | 2020.01 | Effect of a "diluted" diet containing 10% lignocellulose on the gastrointestinal tract, intestinal microbiota, and excreta characteristics of dual purpose laying hens. | 4 | 1.3 | 2 | --- | ||
| Wang, Yiming et al. Poult Sci. (2021). 100(7):101196 34111611 | PM | C | 2021.07 | Effects of a probiotic-fermented herbal blend on the growth performance, intestinal flora and immune function of chicks infected with Salmonella pullorum. | 1 | 0.6 | 0 | --- | |
| Rehman, H et al. J Anim Physiol Anim Nutr (Berl). (2008). 92(4):471-80 18662357 | PM | 2008.08 | Effects of differentially fermentable carbohydrates on the microbial fermentation profile of the gastrointestinal tract of broilers. | 5 | 0.3 | 0 | --- | ||
| Wongkuna, Supapit et al. F1000Res. (2020). 9:1103 33024551 | PM | 2020.00 | Taxono-genomics description of Olsenella lakotia SW165 T sp. nov., a new anaerobic bacterium isolated from cecum of feral chicken. | 1 | 0.3 | 0 | --- | ||
| Milanović, Vesna et al. Mol Nutr Food Res. (2017). 61(9) 28464483 | PM | 2017.09 | Occurrence of antibiotic resistance genes in the fecal DNA of healthy omnivores, ovo-lacto vegetarians and vegans. | 8 | 1.5 | 0 | --- | ||
| Nowak-Węgrzyn, Anna; Chatchatee, Pantipa Ann Nutr Metab. (2017). 70 Suppl 2:7-24 28521317 | PM | R | 2017.00 | Mechanisms of Tolerance Induction. | 8 | 1.3 | 0 | --- | |
| Bajagai, Yadav S et al. Appl Microbiol Biotechnol. (2020). 104(24):10631-10640 33180171 | PM | 2020.12 | Phytogenic products, used as alternatives to antibiotic growth promoters, modify the intestinal microbiota derived from a range of production systems: an in vitro model. | 2 | 0.9 | 0 | --- | ||
| Brisbin, J T et al. Poult Sci. (2008). 87(10):1995-9 18809861 | PM | 2008.10 | Influence of in-feed virginiamycin on the systemic and mucosal antibody response of chickens. | 5 | 0.3 | 1 | --- | ||
| Haghighi, Hamid R et al. Clin Vaccine Immunol. (2006). 13(9):975-80 16960107 | PM | 2006.09 | Probiotics stimulate production of natural antibodies in chickens. | 44 | 2.7 | 5 | --- | ||
| Saito, Norihiro et al. Jpn J Infect Dis. (2020). 73(5):354-360 32350219 | PM | 2020.09 | Impact of Geographical Variations on the Prevalence of Multidrug-Resistant Organisms in Japan. | 0 | 0.0 | 0 | --- | ||
| Luo, Jinglong et al. Wei Sheng Wu Xue Bao. (2011). 51(8):1042-51 22097769 | PM | 2011.08 | [Influence of predominant aerobic bacteria isolated from different healthy animals on daidzein biotransforming capacity by co-culture with different daidzein biotransforming bacteria]. | 0 | 0.0 | 0 | --- | ||
| Geng, Shunju et al. ACS Omega. (2021). 6(20):13094-13104 34056459 | PM | 2021.05 | Alterations and Correlations of the Gut Microbiome, Performance, Egg Quality, and Serum Biochemical Indexes in Laying Hens with Low-Protein Amino Acid-Deficient Diets. | 1 | 0.5 | 0 | --- | ||
| Yin, Yeshi et al. ISME J. (2010). 4(3):367-76 19956274 | PM | 2010.03 | Exposure of different bacterial inocula to newborn chicken affects gut microbiota development and ileum gene expression. | 46 | 3.5 | 23 | --- | ||
| Tegtmeier, Dorothee et al. Front Microbiol. (2021). 12:634503 33854488 | PM | 2021.00 | Cottonseed Press Cake as a Potential Diet for Industrially Farmed Black Soldier Fly Larvae Triggers Adaptations of Their Bacterial and Fungal Gut Microbiota. | 1 | 0.4 | 0 | --- | ||
| Poole, Toni L et al. Foodborne Pathog Dis. (2009). 6(7):901-6 19737066 | PM | 2009.09 | Ecology of Enterococcus faecalis and niche-adapted or non-niche-adapted Enterococcus faecium in continuous-flow anaerobic cultures. | 0 | 0.0 | 0 | --- | ||
| Torki, M et al. Br Poult Sci. (2018). 59(5):579-590 29969287 | PM | 2018.10 | Effect of nutritional interventions with quercetin, oat hulls, β-glucans, lysozyme and fish oil on performance and health status related parameters of broilers chickens. | 3 | 0.7 | 1 | --- | ||
| Scupham, Alexandra J et al. Microb Ecol. (2008). 56(2):322-31 18183454 | PM | 2008.08 | Comparison of the cecal microbiota of domestic and wild turkeys. | 51 | 3.5 | 15 | --- | ||
| Scheraiber, M et al. J Appl Microbiol. (2019). 127(4):996-1003 31287945 | PM | C | 2019.10 | Inclusion of IgY in a dog's diet has moderate impact on the intestinal microbial fermentation. | 1 | 0.3 | 0 | --- | |
| Tuzun, Funda et al. J Pediatr Gastroenterol Nutr. (2013). 56(3):328-32 23132163 | PM | 2013.03 | Breast milk jaundice: effect of bacteria present in breast milk and infant feces. | 10 | 1.0 | 0 | --- | ||
| Mayne, Janice et al. Viruses. (2021). 13(9) 34578313 | PM | 2021.08 | Examining the Effects of an Anti-Salmonella Bacteriophage Preparation, BAFASAL®, on Ex-Vivo Human Gut Microbiome Composition and Function Using a Multi-Omics Approach. | 2 | 1.3 | 0 | --- | ||
| Redweik, Graham A J et al. Front Microbiol. (2019). 10:3064 32010110 | PM | 2019.00 | Oral Treatments With Probiotics and Live Salmonella Vaccine Induce Unique Changes in Gut Neurochemicals and Microbiome in Chickens. | 5 | 1.2 | 0 | --- | ||
| Abbasi Arabshahi, Hossein et al. Poult Sci. (2021). 100(5):101066 33744611 | PM | 2021.05 | Effects of multicarbohydrase and butyrate glycerides on productive performance, nutrient digestibility, gut morphology, and ileal microbiota in late-phase laying hens fed corn- or wheat-based diets. | 0 | 0.0 | 0 | --- | ||
| Faber, Joyce et al. J Nutr. (2011). 141(7):1292-8 21562235 | PM | 2011.07 | Bacterial translocation is reduced by a specific nutritional combination in mice with chemotherapy-induced neutropenia. | 4 | 0.3 | 0 | --- | ||
| Bai, Yan et al. Front Vet Sci. (2021). 8:720851 34485442 | PM | 2021.00 | Folic Acid Absorption Characteristics and Effect on Cecal Microbiota of Laying Hens. | 0 | 0.0 | 0 | --- | ||
| Wang, Jian et al. Front Microbiol. (2021). 12:706396 34335542 | PM | 2021.00 | Changes in Growth Performance and Ileal Microbiota Composition by Xylanase Supplementation in Broilers Fed Wheat-Based Diets. | 1 | 0.4 | 0 | --- | ||
| Wealleans, A L et al. Poult Sci. (2017). 96(12):4287-4297 29053809 | PM | 2017.12 | Comparative effects of two multi-enzyme combinations and a Bacillus probiotic on growth performance, digestibility of energy and nutrients, disappearance of non-starch polysaccharides, and gut microflora in broiler chickens. | 8 | 1.5 | 1 | --- | ||
| Singh, Y et al. Poult Sci. (2014). 93(3):607-16 24604854 | PM | 2014.03 | Influence of feeding coarse corn on performance, nutrient utilization, digestive tract measurements, carcass characteristics, and cecal microflora counts of broilers. | 8 | 0.9 | 0 | --- | ||
| Bampidis, Vasileios et al. EFSA J. (2020). 18(11):e06169 33209147 | PM | 2020.11 | Safety and efficacy of STENOROL® (halofuginone hydrobromide) as a feed additive for chickens for fattening and turkeys. | 0 | 0.0 | 0 | --- | ||
| Yan, Wei et al. Sci Rep. (2017). 7:45308 28349946 | PM | 2017.03 | Gut metagenomic analysis reveals prominent roles of Lactobacillus and cecal microbiota in chicken feed efficiency. | 75 | 12.5 | 32 | --- | ||
| Shumo, Marwa et al. Front Microbiol. (2021). 12:687103 34630342 | PM | 2021.00 | A Molecular Survey of Bacterial Species in the Guts of Black Soldier Fly Larvae (Hermetia illucens) Reared on Two Urban Organic Waste Streams in Kenya. | 0 | 0.0 | 0 | --- | ||
| van der Eijk, Jerine A J et al. Sci Rep. (2020). 10(1):2750 32066789 | PM | 2020.02 | Early-life microbiota transplantation affects behavioural responses, serotonin and immune characteristics in chicken lines divergently selected on feather pecking. | 13 | 4.2 | 2 | --- | ||
| Hui, Junnan et al. Anim Sci J. 91(1):e13344 32219951 | PM | 2020.00 | Effects of supplementation with β-carotene on the growth performance and intestinal mucosal barriers in layer-type cockerels. | 1 | 0.3 | 0 | --- | ||
| Gielda, Lindsay M; DiRita, Victor J mBio. (2012). 3(4):e00171-12 22851657 | PM | 2012.00 | Zinc competition among the intestinal microbiota. | 55 | 4.9 | 5 | --- | ||
| Carlos, Camila et al. BMC Microbiol. (2010). 10:161 20515490 | PM | 2010.06 | Escherichia coli phylogenetic group determination and its application in the identification of the major animal source of fecal contamination. | 71 | 5.6 | 0 | --- | ||
| Brisbin, Jennifer T et al. Clin Vaccine Immunol. (2011). 18(9):1447-55 21734067 | PM | 2011.09 | Oral treatment of chickens with lactobacilli influences elicitation of immune responses. | 39 | 3.4 | 7 | --- | ||
| Birkl, P et al. Poult Sci. (2018). 97(9):3009-3014 29800328 | PM | 2018.09 | Differences in cecal microbiome of selected high and low feather-pecking laying hens. | 12 | 2.7 | 6 | --- | ||
| Lee, Sunghee et al. ISME J. (2014). 8(3):493-503 24108330 | PM | 2014.03 | Gene-targeted metagenomic analysis of glucan-branching enzyme gene profiles among human and animal fecal microbiota. | 15 | 1.7 | 0 | --- | ||
| Feng, Jia et al. J Anim Sci Biotechnol. (2021). 12(1):72 34225796 | PM | 2021.07 | Dietary oregano essential oil supplementation improves intestinal functions and alters gut microbiota in late-phase laying hens. | 2 | 1.2 | 0 | --- | ||
| Bayrak, Muharrem Medicine (Baltimore). (2020). 99(23):e20577 32502027 | PM | 2020.06 | Metabolic syndrome, depression, and fibromyalgia syndrome prevalence in patients with irritable bowel syndrome: A case-control study. | 1 | 0.4 | 0 | --- | ||
| Sun, Hao Yang et al. Poult Sci. (2020). 99(11):5728-5735 33142490 | PM | 2020.11 | Evaluation of Achyranthes japonica Nakai extract on growth performance, nutrient utilization, cecal microbiota, excreta noxious gas emission, and meat quality in broilers fed corn-wheat-soybean meal diet. | 0 | 0.0 | 0 | --- | ||
| Zeller, Ellen et al. J Nutr Sci. (2015). 4:e1 26090091 | PM | 2015.00 | Hydrolysis of phytate and formation of inositol phosphate isomers without or with supplemented phytases in different segments of the digestive tract of broilers. | 28 | 3.4 | 2 | --- | ||
| D'Aimmo, Maria R et al. Anaerobe. (2014). 30:169-77 25312826 | PM | 2014.12 | Biosynthesis and cellular content of folate in bifidobacteria across host species with different diets. | 6 | 0.7 | 0 | --- | ||
| Coates, M E Br Poult Sci. (1986). 27(1):3-10 3708405 | PM | 1986.03 | Gordon memorial lecture. The biologists' debt to the domestic fowl. | 0 | 0.0 | 0 | --- | ||
| Heimesaat, Markus M et al. Gut Pathog. (2015). 7:28 26483849 | PM | 2015.00 | Survey of small intestinal and systemic immune responses following murine Arcobacter butzleri infection. | 7 | 0.8 | 0 | --- | ||
| Song, Jiao et al. Front Microbiol. (2020). 11:584380 33424783 | PM | 2020.00 | Dietary Inulin Supplementation Modulates Short-Chain Fatty Acid Levels and Cecum Microbiota Composition and Function in Chickens Infected With Salmonella. | 1 | 0.3 | 0 | --- | ||
| Morgan, Natalie K et al. Anim Nutr. (2019). 5(1):56-62 30899810 | PM | 2019.03 | Effect of arabinoxylo-oligosaccharides and arabinoxylans on net energy and nutrient utilization in broilers. | 11 | 2.8 | 0 | --- | ||
| Altop, A et al. Br Poult Sci. (2018). 59(1):121-127 29094608 | PM | 2018.02 | Effects of essential oils from Liquidambar orientalis Mill. leaves on growth performance, carcass and some organ traits, some blood metabolites and intestinal microbiota in broilers. | 5 | 1.0 | 0 | --- | ||
| Toprak Ülger, Nurver et al. Mikrobiyol Bul. (2013). 47(4):717-21 24237441 | PM | 2013.10 | [The first metronidazole-resistant Bacteroides species isolated at Marmara University Hospital: Bacteroides thetaiotaomicron]. | 2 | 0.2 | 0 | --- | ||
| Gong, Yujie et al. J Anim Sci Biotechnol. (2020). 11:8 31956411 | PM | 2020.00 | Early inoculation with caecal fermentation broth alters small intestine morphology, gene expression of tight junction proteins in the ileum, and the caecal metabolomic profiling of broilers. | 1 | 0.3 | 0 | --- | ||
| Hussain, Muzahir et al. Food Funct. (2020). 11(10):9168-9176 33026380 | PM | 2020.10 | Gut inflammation exacerbates hepatic injury in C57BL/6J mice via gut-vascular barrier dysfunction with high-fat-incorporated meat protein diets. | 1 | 0.4 | 0 | --- | ||
| Engberg, R M et al. Br Poult Sci. (2009). 50(2):228-39 19373724 | PM | 2009.03 | Fermented feed for laying hens: effects on egg production, egg quality, plumage condition and composition and activity of the intestinal microflora. | 15 | 1.1 | 0 | --- | ||
| Saeed, Muhammad et al. Recent Pat Inflamm Allergy Drug Discov. (2018). 12(1):24-38 29473532 | PM | R | 2018.00 | The Promising Pharmacological Effects and Therapeutic/Medicinal Applications of Punica Granatum L. (Pomegranate) as a Functional Food in Humans and Animals. | 10 | 1.9 | 1 | --- | |
| Zhang, Beibei et al. Br J Nutr. (2017). 118(5):321-332 28901890 | PM | 2017.09 | Dietary l-arginine inhibits intestinal Clostridium perfringens colonisation and attenuates intestinal mucosal injury in broiler chickens. | 19 | 3.5 | 6 | --- | ||
| André, Perrine et al. Am J Clin Nutr. (2021). 114(3):1080-1091 34036325 | PM | 2021.09 | Mediterranean diet and prudent diet are both associated with low circulating esterified 3-hydroxy fatty acids, a proxy of LPS burden, among older adults. | 0 | 0.0 | 0 | --- | ||
| Savory, C J Br J Nutr. (1992). 67(1):91-102 1547205 | PM | 1992.01 | Enzyme supplementation, degradation and metabolism of three U-14C-labelled cell-wall substrates in the fowl. | 2 | 0.1 | 0 | --- | ||
| Cressman, Michael D et al. Appl Environ Microbiol. (2010). 76(19):6572-82 20693454 | PM | 2010.10 | Interrelations between the microbiotas in the litter and in the intestines of commercial broiler chickens. | 48 | 3.9 | 14 | --- | ||
| Reda, F M et al. Animal. (2020). 14(5):1025-1033 31826776 | PM | C | 2020.05 | Use of red pepper oil in quail diets and its effect on performance, carcass measurements, intestinal microbiota, antioxidant indices, immunity and blood constituents. | 16 | 5.6 | 1 | --- | |
| Mazzio, Elizabeth A; Soliman, Karam F A Cancer Genomics Proteomics. (2017). 14(1):17-33 28031235 | PM | 2017.01 | HTP Nutraceutical Screening for Histone Deacetylase Inhibitors and Effects of HDACis on Tumor-suppressing miRNAs by Trichostatin A and Grapeseed (Vitis vinifera) in HeLa cells. | 2 | 0.3 | 0 | --- | ||
| Oso, Abimbola Oladele et al. Trop Anim Health Prod. (2013). 45(8):1763-9 23765551 | PM | 2013.11 | Effect of ginger (Zingiber officinale Roscoe) on growth performance, nutrient digestibility, serum metabolites, gut morphology, and microflora of growing guinea fowl. | 2 | 0.2 | 0 | --- | ||
| Godoy-Vitorino, Filipa et al. Appl Environ Microbiol. (2008). 74(19):5905-12 18689523 | PM | 2008.10 | Bacterial community in the crop of the hoatzin, a neotropical folivorous flying bird. | 24 | 1.7 | 4 | --- | ||
| Ryu, Hodon et al. Appl Environ Microbiol. (2014). 80(6):1838-47 24413599 | PM | 2014.03 | Intestinal microbiota and species diversity of Campylobacter and Helicobacter spp. in migrating shorebirds in Delaware Bay. | 18 | 2.0 | 4 | --- | ||
| PM | .-- | 0 | 0.0 | 0 | --- | ||||
| PM | .-- | 0 | 0.0 | 0 | --- | ||||
| PM | .-- | 0 | 0.0 | 0 | --- | ||||
| PM | .-- | 0 | 0.0 | 0 | --- |
| D000821 | Animal Feed | 315/1239 | [+PMIDs] | |
| D011201 | Poultry Diseases | 177/1239 | [+PMIDs] | |
| D019587 | Dietary Supplements | 170/1239 | [+PMIDs] | |
| D001419 | Bacteria | taxid:2 | 160/1239 | [+PMIDs] |
| D012336 | RNA, Ribosomal, 16S | 155/1239 | [+PMIDs] | |
| D019936 | Probiotics | 118/1239 | [+PMIDs] | |
| D005243 | Feces | 113/1239 | [+PMIDs] | |
| D007778 | Lactobacillus | taxid:1578 | 70/1239 | [+PMIDs] |
| D004926 | Escherichia coli | taxid:562 | 61/1239 | [+PMIDs] |
| D012481 | Salmonella Infections, Animal | 58/1239 | [+PMIDs] | |
| D015430 | Weight Gain | 49/1239 | [+PMIDs] | |
| D004269 | DNA, Bacterial | 47/1239 | [+PMIDs] | |
| D008460 | Meat | 40/1239 | [+PMIDs] | |
| D056692 | Prebiotics | 39/1239 | [+PMIDs] | |
| D003016 | Clostridium perfringens | taxid:1502 | 36/1239 | [+PMIDs] |
| D009844 | Oligosaccharides | 34/1239 | [+PMIDs] | |
| D002169 | Campylobacter Infections | 30/1239 | [+PMIDs] | |
| D005232 | Fatty Acids, Volatile | 28/1239 | [+PMIDs] | |
| D004751 | Enteritis | 28/1239 | [+PMIDs] | |
| D016207 | Cytokines | 26/1239 | [+PMIDs] | |
| D003048 | Coccidiosis | 26/1239 | [+PMIDs] | |
| D003015 | Clostridium Infections | 25/1239 | [+PMIDs] | |
| D010936 | Plant Extracts | 25/1239 | [+PMIDs] | |
| D000975 | Antioxidants | 24/1239 | [+PMIDs] | |
| D012329 | RNA, Bacterial | 24/1239 | [+PMIDs] | |
| D012486 | Salmonella typhimurium | taxid:90371 | 24/1239 | [+PMIDs] |
| D012477 | Salmonella enteritidis | taxid:149539 | 23/1239 | [+PMIDs] |
| D016123 | Campylobacter jejuni | taxid:197 | 23/1239 | [+PMIDs] |
| D012475 | Salmonella | taxid:590 | 23/1239 | [+PMIDs] |
| D004927 | Escherichia coli Infections | 21/1239 | [+PMIDs] | |
| D001412 | Bacillus subtilis | taxid:1423 | 20/1239 | [+PMIDs] |
| D001414 | Bacitracin | 1405-87-4 1405-89-6 | 19/1239 | [+PMIDs] |
| D001644 | Bifidobacterium | taxid:1678 | 18/1239 | [+PMIDs] |
| D005766 | Gastrointestinal Contents | 18/1239 | [+PMIDs] | |
| D009822 | Oils, Volatile | 17/1239 | [+PMIDs] | |
| D058616 | Synbiotics | 17/1239 | [+PMIDs] | |
| D041963 | Bacteroidetes | taxid:976 | 16/1239 | [+PMIDs] |
| D004755 | Enterobacteriaceae | taxid:543 | 16/1239 | [+PMIDs] |
| D004531 | Eggs | 15/1239 | [+PMIDs] | |
| D000068536 | Firmicutes | taxid:1239 | 15/1239 | [+PMIDs] |
| D004043 | Dietary Fiber | 15/1239 | [+PMIDs] | |
| D004275 | DNA, Ribosomal | 15/1239 | [+PMIDs] | |
| D005503 | Food Additives | 14/1239 | [+PMIDs] | |
| D007444 | Inulin | 9005-80-5 | 14/1239 | [+PMIDs] |
| D010957 | Plasmids | 13/1239 | [+PMIDs] | |
| D005227 | Fatty Acids | 13/1239 | [+PMIDs] | |
| D016984 | Enterococcus faecium | taxid:1352 | 13/1239 | [+PMIDs] |
| D030161 | Avian Proteins | 13/1239 | [+PMIDs] | |
| D013025 | Soybeans | 13/1239 | [+PMIDs] | |
| D004044 | Dietary Proteins | 13/1239 | [+PMIDs] | |
| D001715 | Bird Diseases | 13/1239 | [+PMIDs] | |
| D020560 | Proteobacteria | taxid:1224 | 12/1239 | [+PMIDs] |
| D000328 | Adult | 12/1239 | [+PMIDs] | |
| D008875 | Middle Aged | 11/1239 | [+PMIDs] | |
| D002167 | Campylobacter | taxid:194 | 11/1239 | [+PMIDs] |
| D001426 | Bacterial Proteins | 10/1239 | [+PMIDs] | |
| D008351 | Mannans | 10/1239 | [+PMIDs] | |
| D011134 | Polysaccharides | 10/1239 | [+PMIDs] | |
| D007136 | Immunoglobulins | 10/1239 | [+PMIDs] | |
| D007070 | Immunoglobulin A | 9/1239 | [+PMIDs] | |
| D001424 | Bacterial Infections | 9/1239 | [+PMIDs] | |
| D048191 | Lactobacillus plantarum | taxid:1590 | 9/1239 | [+PMIDs] |
| D012333 | RNA, Messenger | 9/1239 | [+PMIDs] | |
| D000596 | Amino Acids | 9/1239 | [+PMIDs] | |
| D015032 | Zinc | j41csq7qds 7440-66-6 | 8/1239 | [+PMIDs] |
| D012639 | Seeds | 8/1239 | [+PMIDs] | |
| D000890 | Anti-Infective Agents | 8/1239 | [+PMIDs] | |
| D055815 | Young Adult | 8/1239 | [+PMIDs] | |
| D019344 | Lactic Acid | 33x04xa5at 3q6m5set7w 50-21-5 67m901l9nq f9s9ffu82n | 8/1239 | [+PMIDs] |
| D007501 | Iron | e1uol152h7 7439-89-6 | 8/1239 | [+PMIDs] |
| D007074 | Immunoglobulin G | 7/1239 | [+PMIDs] | |
| D014769 | Virginiamycin | 11006-76-1 | 7/1239 | [+PMIDs] |
| D039903 | Actinobacteria | taxid:1760 | 7/1239 | [+PMIDs] |
| D008070 | Lipopolysaccharides | 7/1239 | [+PMIDs] | |
| D000077422 | Enrofloxacin | 3dx3xek1bn 93106-60-6 | 7/1239 | [+PMIDs] |
| D004798 | Enzymes | 7/1239 | [+PMIDs] | |
| D023181 | Antimicrobial Cationic Peptides | 7/1239 | [+PMIDs] | |
| D001439 | Bacteroides | taxid:816 | 7/1239 | [+PMIDs] |
| D001483 | Base Sequence | 7/1239 | [+PMIDs] | |
| D004040 | Dietary Carbohydrates | 7/1239 | [+PMIDs] | |
| D013293 | Enterococcus faecalis | taxid:1351 | 7/1239 | [+PMIDs] |
| D010832 | 6-Phytase | ec 9001-89-2 | 7/1239 | [+PMIDs] |
| D062725 | Tight Junction Proteins | 7/1239 | [+PMIDs] | |
| D024841 | Fluoroquinolones | 6/1239 | [+PMIDs] | |
| D002087 | Butyrates | 6/1239 | [+PMIDs] | |
| D000078622 | Nutrients | 6/1239 | [+PMIDs] | |
| D011202 | Poultry Products | 6/1239 | [+PMIDs] | |
| D010938 | Plant Oils | 6/1239 | [+PMIDs] | |
| D003013 | Clostridium | taxid:1485 | 6/1239 | [+PMIDs] |
| D043364 | Endo-1,4-beta Xylanases | ec 9025-57-4 ec | 6/1239 | [+PMIDs] |
| D002523 | Edible Grain | 6/1239 | [+PMIDs] | |
| D001120 | Arginine | 94zla3w45f 7004-12-8 74-79-3 f7lth1e20y | 6/1239 | [+PMIDs] |
| D004530 | Egg Yolk | 6/1239 | [+PMIDs] | |
| D007410 | Intestinal Diseases | 5/1239 | [+PMIDs] | |
| D008103 | Liver Cirrhosis | 5/1239 | [+PMIDs] | |
| D019779 | Salmonella enterica | taxid:28901 | 5/1239 | [+PMIDs] |
| D007777 | Lactobacillaceae | taxid:33958 | 5/1239 | [+PMIDs] |
| D001647 | Bile Acids and Salts | 5/1239 | [+PMIDs] | |
| D000069996 | Lactobacillus salivarius | taxid:1624 | 5/1239 | [+PMIDs] |
| D009077 | Mucins | 5/1239 | [+PMIDs] | |
| D000368 | Aged | 5/1239 | [+PMIDs] | |
| D003470 | Culture Media | 5/1239 | [+PMIDs] | |
| D001430 | Bacteriocins | 5/1239 | [+PMIDs] | |
| D010447 | Peptide Hydrolases | ec | 5/1239 | [+PMIDs] |
| D000641 | Ammonia | 7664-41-7 | 5/1239 | [+PMIDs] |
| D020148 | Butyric Acid | 107-92-6 556-45-6 | 5/1239 | [+PMIDs] |
| D016983 | Enterococcus | taxid:1350 | 5/1239 | [+PMIDs] |
| D007371 | Interferon-gamma | 82115-62-6 | 5/1239 | [+PMIDs] |
| D005527 | Food, Fortified | 4/1239 | [+PMIDs] | |
| D002118 | Calcium | sy7q814vup 7440-70-2 | 4/1239 | [+PMIDs] |
| D001421 | Bacteria, Anaerobic | 4/1239 | [+PMIDs] | |
| D000069977 | Bacillus amyloliquefaciens | taxid:1390 | 4/1239 | [+PMIDs] |
| D017931 | DNA Primers | 4/1239 | [+PMIDs] | |
| D011714 | Pyrans | 4/1239 | [+PMIDs] | |
| D009793 | Ochratoxins | 4/1239 | [+PMIDs] | |
| D001407 | Bacillus | taxid:1386 | 4/1239 | [+PMIDs] |
| D007223 | Infant | 4/1239 | [+PMIDs] | |
| D000085 | Acetates | 4/1239 | [+PMIDs] | |
| D010368 | Pectins | 89na02m4rx 9000-69-5 | 4/1239 | [+PMIDs] |
| D010455 | Peptides | 4/1239 | [+PMIDs] | |
| D005585 | Influenza in Birds | 4/1239 | [+PMIDs] | |
| D052200 | Lactobacillus reuteri | taxid:1598 | 4/1239 | [+PMIDs] |
| D005234 | Fatty Liver | 4/1239 | [+PMIDs] | |
| D007231 | Infant, Newborn | 4/1239 | [+PMIDs] | |
| D003049 | Coccidiostats | 4/1239 | [+PMIDs] | |
| D059808 | Polyphenols | 4/1239 | [+PMIDs] | |
| D013213 | Starch | 9005-25-8 | 4/1239 | [+PMIDs] |
| D014409 | Tumor Necrosis Factor-alpha | 4/1239 | [+PMIDs] | |
| D000069466 | Red Meat | 4/1239 | [+PMIDs] | |
| D006133 | Growth Substances | 4/1239 | [+PMIDs] | |
| D016052 | Protozoan Vaccines | 4/1239 | [+PMIDs] | |
| D002784 | Cholesterol | 97c5t2uq7j 57-88-5 | 4/1239 | [+PMIDs] |
| D009113 | Muramidase | ec | 4/1239 | [+PMIDs] |
| D013291 | Streptococcus | taxid:1301 | 4/1239 | [+PMIDs] |
| D056546 | Lactobacillales | taxid:186826 | 4/1239 | [+PMIDs] |
| D000907 | Antibodies, Bacterial | 4/1239 | [+PMIDs] | |
| D015645 | Tylosin | yef4jxn031 11032-12-5 1401-69-0 5p4625c51t | 4/1239 | [+PMIDs] |
| D000293 | Adolescent | 4/1239 | [+PMIDs] | |
| D051193 | Toll-Like Receptors | 4/1239 | [+PMIDs] | |
| D003091 | Colistin | z67x93hjg1 1066-17-7 wp15dxu577 | 4/1239 | [+PMIDs] |
| D012459 | Salicylates | 4/1239 | [+PMIDs] | |
| D035683 | MicroRNAs | 4/1239 | [+PMIDs] | |
| D007075 | Immunoglobulin M | 4/1239 | [+PMIDs] | |
| D018925 | Chemokines | 3/1239 | [+PMIDs] | |
| D045786 | Diterpenes, Kaurane | 3/1239 | [+PMIDs] | |
| D014995 | Xylosidases | ec | 3/1239 | [+PMIDs] |
| D006026 | Glycoside Hydrolases | ec | 3/1239 | [+PMIDs] |
| D002482 | Cellulose | 9004-34-6 | 3/1239 | [+PMIDs] |
| D000469 | Alkaline Phosphatase | ec 9001-78-9 | 3/1239 | [+PMIDs] |
| D051197 | Toll-Like Receptor 4 | 3/1239 | [+PMIDs] | |
| D000681 | Amylases | ec | 3/1239 | [+PMIDs] |
| D005983 | Glutens | 8002-80-0 | 3/1239 | [+PMIDs] |
| D009355 | Neomycin | i16qd7x297 057y626693 140-12-5 1404-04-2 1405-10-3 3i9j454g9f | 3/1239 | [+PMIDs] |
| D012701 | Serotonin | 333do1rdjy 50-67-9 | 3/1239 | [+PMIDs] |
| D013634 | Tannins | 3/1239 | [+PMIDs] | |
| D010833 | Phytic Acid | 7igf0s7r8i 83-86-3 88496g1erl l1wk0t5s7z n1dep08lnk | 3/1239 | [+PMIDs] |
| D000070000 | Bacillus coagulans | taxid:1398 | 3/1239 | [+PMIDs] |
| D013210 | Staphylococcus | taxid:1279 | 3/1239 | [+PMIDs] |
| D008715 | Methionine | ae28f7pnpl 63-68-3 7005-18-7 | 3/1239 | [+PMIDs] |
| D001428 | Bacterial Vaccines | 3/1239 | [+PMIDs] | |
| D055951 | Functional Food | 3/1239 | [+PMIDs] | |
| D000893 | Anti-Inflammatory Agents | 3/1239 | [+PMIDs] | |
| D050178 | Monoglycerides | 3/1239 | [+PMIDs] | |
| D009765 | Obesity | 3/1239 | [+PMIDs] | |
| D018352 | Coronavirus Infections | 3/1239 | [+PMIDs] | |
| D005989 | Glycerides | 3/1239 | [+PMIDs] | |
| D005960 | Glucosides | 3/1239 | [+PMIDs] | |
| D016908 | Gram-Positive Bacterial Infections | 3/1239 | [+PMIDs] | |
| D004529 | Egg White | 3/1239 | [+PMIDs] | |
| D002918 | Chymotrypsin | ec 9004-07-3 | 3/1239 | [+PMIDs] |
| D019342 | Acetic Acid | q40q9n063p 64-19-7 | 3/1239 | [+PMIDs] |
| D001618 | beta-Lactamases | ec | 3/1239 | [+PMIDs] |
| D007848 | Laurates | 3/1239 | [+PMIDs] | |
| D002751 | Chlortetracycline | wck1kiq23q 14297-93-9 1d06kz672i 27823-62-7 33662-15-6 3671-08-7 57-62-5 5892-31-9 7220-97-5 o1gx33on8r | 3/1239 | [+PMIDs] |
| D000078502 | Meat Proteins | 3/1239 | [+PMIDs] | |
| D012643 | Selenium | h6241uj22b 7782-49-2 | 3/1239 | [+PMIDs] |
| D002439 | Cefotaxime | n2gi8b1gk7 258j72s7tz 63527-52-6 64485-93-4 | 3/1239 | [+PMIDs] |
| D004365 | Drugs, Chinese Herbal | 3/1239 | [+PMIDs] | |
| D015002 | Yeast, Dried | 3/1239 | [+PMIDs] | |
| D037521 | Virulence Factors | 3/1239 | [+PMIDs] | |
| D048271 | Chitosan | 9012-76-4 | 3/1239 | [+PMIDs] |
| D000658 | Amoxicillin | 804826j2hu 26787-78-0 26889-93-0 34642-78-9 544y3d6myh 61336-70-7 9em05410q9 | 3/1239 | [+PMIDs] |
| D000374 | Aggression | 3/1239 | [+PMIDs] | |
| D001546 | Bentonite | 1302-78-9 a585mn1h2l | 3/1239 | [+PMIDs] |
| D010406 | Penicillins | 3/1239 | [+PMIDs] | |
| D051195 | Toll-Like Receptor 2 | 3/1239 | [+PMIDs] | |
| D008985 | Monensin | 906o0yj6zp 17090-79-8 1gs872gafv 22373-78-0 | 3/1239 | [+PMIDs] |
| D011422 | Propionates | 3/1239 | [+PMIDs] | |
| D004247 | DNA | 9007-49-2 | 3/1239 | [+PMIDs] |
| D006094 | Gram-Positive Bacteria | 3/1239 | [+PMIDs] | |
| D002241 | Carbohydrates | 3/1239 | [+PMIDs] | |
| D010636 | Phenols | 3/1239 | [+PMIDs] | |
| D014527 | Uric Acid | 268b43mj25 69-93-2 | 3/1239 | [+PMIDs] |
| D013662 | Tea | 3/1239 | [+PMIDs] | |
| D016209 | Interleukin-8 | 2/1239 | [+PMIDs] | |
| D010273 | Parasitic Diseases, Animal | 2/1239 | [+PMIDs] | |
| D055262 | Mucin-2 | 2/1239 | [+PMIDs] | |
| D004251 | DNA Transposable Elements | 2/1239 | [+PMIDs] | |
| D002182 | Candy | 2/1239 | [+PMIDs] | |
| D052899 | Pore Forming Cytotoxic Proteins | 2/1239 | [+PMIDs] | |
| D013294 | Lactococcus lactis | taxid:1358 | 2/1239 | [+PMIDs] |
| D013912 | Threonine | 2zd004190s 72-19-5 | 2/1239 | [+PMIDs] |
| D007850 | Lauric Acids | 2/1239 | [+PMIDs] | |
| D018834 | Chaperonin 60 | 2/1239 | [+PMIDs] | |
| D027081 | DNA Gyrase | ec | 2/1239 | [+PMIDs] |
| D060085 | Coinfection | 2/1239 | [+PMIDs] | |
| D002908 | Chronic Disease | 2/1239 | [+PMIDs] | |
| D014777 | Virus Diseases | 2/1239 | [+PMIDs] | |
| D000081007 | Cymenes | 2/1239 | [+PMIDs] | |
| D019817 | Benzoic Acid | 8skn0b0mim 582-25-2 65-85-0 763yqn2k7k | 2/1239 | [+PMIDs] |
| D060766 | Drinking Water | 2/1239 | [+PMIDs] | |
| D002939 | Ciprofloxacin | 5e8k9i0o4u 0mp32mfp6c 4ba73m5e37 85721-33-1 86393-32-0 | 2/1239 | [+PMIDs] |
| D000070037 | Faecalibacterium prausnitzii | taxid:853 | 2/1239 | [+PMIDs] |
| D011506 | Proteins | 2/1239 | [+PMIDs] | |
| D000070006 | Pediococcus pentosaceus | taxid:1255 | 2/1239 | [+PMIDs] |
| D007779 | Lactobacillus acidophilus | taxid:1579 | 2/1239 | [+PMIDs] |
| D001219 | Aspartate Aminotransferases | ec | 2/1239 | [+PMIDs] |
| D017382 | Reactive Oxygen Species | 2/1239 | [+PMIDs] | |
| D007780 | Lactobacillus casei | taxid:1582 | 2/1239 | [+PMIDs] |
| D016328 | NF-kappa B | 2/1239 | [+PMIDs] | |
| D011994 | Recombinant Proteins | 2/1239 | [+PMIDs] | |
| D013754 | Tetracyclines | 2/1239 | [+PMIDs] | |
| D014364 | Tryptophan | 8duh1n11bx 6912-86-3 73-22-3 | 2/1239 | [+PMIDs] |
| D000068016 | Clostridiales | taxid:186802 | 2/1239 | [+PMIDs] |
| D001663 | Bilirubin | rfm9x3lj49 18422-02-1 635-65-4 69853-42-5 69853-43-6 69853-44-7 7240-17-7 93891-87-3 | 2/1239 | [+PMIDs] |
| D016604 | Aflatoxin B1 | 9n2n2y55mh 10279-73-9 1162-65-8 43043-21-6 77076-87-0 77076-88-1 84415-24-7 | 2/1239 | [+PMIDs] |
| D014255 | Trichothecenes | 2/1239 | [+PMIDs] | |
| D046972 | Clostridium butyricum | taxid:1492 | 2/1239 | [+PMIDs] |
| D064209 | Phytochemicals | 2/1239 | [+PMIDs] | |
| D005517 | Foodborne Diseases | 2/1239 | [+PMIDs] | |
| D008031 | Lignin | 9005-53-2 | 2/1239 | [+PMIDs] |
| D012088 | Reoviridae Infections | 2/1239 | [+PMIDs] | |
| D014613 | Vaccines, Attenuated | 2/1239 | [+PMIDs] | |
| D022562 | Salmonella Vaccines | 2/1239 | [+PMIDs] | |
| D003520 | Cyclophosphamide | 8n3dw7272p 50-18-0 60007-96-7 60030-72-0 6uxw23996m | 2/1239 | [+PMIDs] |
| D015164 | Vaccines, Inactivated | 2/1239 | [+PMIDs] | |
| D015034 | Zinc Oxide | soi2loh54z 1314-13-2 | 2/1239 | [+PMIDs] |
| D002606 | Charcoal | 16291-96-6 64365-11-3 | 2/1239 | [+PMIDs] |
| D020543 | Proteome | 2/1239 | [+PMIDs] | |
| D000891 | Anti-Infective Agents, Local | 2/1239 | [+PMIDs] | |
| D000458 | Cyanobacteria | taxid:1117 | 2/1239 | [+PMIDs] |
| D045686 | Mycoplasma gallisepticum | taxid:2096 | 2/1239 | [+PMIDs] |
| D005630 | Fructans | 2/1239 | [+PMIDs] | |
| D029968 | Escherichia coli Proteins | 2/1239 | [+PMIDs] | |
| D016998 | Helicobacter | taxid:209 | 2/1239 | [+PMIDs] |
| D005561 | Formates | 2/1239 | [+PMIDs] | |
| D015212 | Inflammatory Bowel Diseases | 2/1239 | [+PMIDs] | |
| D005685 | Galactans | 2/1239 | [+PMIDs] | |
| D014805 | Vitamin B 12 | p6yc3eg204 68-19-9 8406ey2oqa | 2/1239 | [+PMIDs] |
| D000581 | Amidohydrolases | ec | 2/1239 | [+PMIDs] |
| D016264 | Dextran Sulfate | 9042-14-2 | 2/1239 | [+PMIDs] |
| D001455 | Bambermycins | 11015-37-5 | 2/1239 | [+PMIDs] |
| D006360 | Heat-Shock Proteins | 2/1239 | [+PMIDs] | |
| D013752 | Tetracycline | f8vb5m810t 60-54-8 64-75-5 p6r62377kv | 2/1239 | [+PMIDs] |
| D009175 | Mycoplasma Infections | 2/1239 | [+PMIDs] | |
| D012862 | Skatole | 9w945b5h7r 83-34-1 | 2/1239 | [+PMIDs] |
| D008049 | Lipase | ec | 2/1239 | [+PMIDs] |
| D005395 | Fish Oils | 2/1239 | [+PMIDs] | |
| D007534 | Isomaltose | 67i334ix2m 499-40-1 | 2/1239 | [+PMIDs] |
| D006433 | Hemocyanins | 9013-72-3 | 2/1239 | [+PMIDs] |
| D003165 | Complement System Proteins | 9007-36-7 | 2/1239 | [+PMIDs] |
| D005979 | Glutathione Peroxidase | ec | 2/1239 | [+PMIDs] |
| D023083 | beta-Defensins | 2/1239 | [+PMIDs] | |
| D013943 | Thymol | 3j50xa376e 89-83-8 | 2/1239 | [+PMIDs] |
| D003345 | Corticosterone | w980kj009p 50-22-6 | 2/1239 | [+PMIDs] |
| D005502 | Food | 2/1239 | [+PMIDs] | |
| D005936 | Glucans | 2/1239 | [+PMIDs] | |
| D002648 | Child | 2/1239 | [+PMIDs] | |
| D010538 | Peritonitis | 2/1239 | [+PMIDs] | |
| D009268 | Nalidixic Acid | 3b91hwa56m 15769-77-4 389-08-2 j17ql41zag y7nu182221 | 2/1239 | [+PMIDs] |
| D052201 | Lactobacillus rhamnosus | taxid:47715 | 2/1239 | [+PMIDs] |
| D003369 | Cottonseed Oil | 2/1239 | [+PMIDs] | |
| D013395 | Sucrose | 57-50-1 | 2/1239 | [+PMIDs] |
| D004350 | Drug Residues | 2/1239 | [+PMIDs] | |
| D047495 | PPAR gamma | 2/1239 | [+PMIDs] | |
| D006501 | Hepatic Encephalopathy | 2/1239 | [+PMIDs] | |
| D013553 | Swine Diseases | 2/1239 | [+PMIDs] | |
| D001769 | Blood | 2/1239 | [+PMIDs] | |
| D000074421 | Fermented Foods and Beverages | 2/1239 | [+PMIDs] | |
| D018720 | Prevotella | taxid:838 | 2/1239 | [+PMIDs] |
| D056572 | Histone Deacetylase Inhibitors | 2/1239 | [+PMIDs] | |
| D013315 | Stress, Psychological | 2/1239 | [+PMIDs] | |
| D056569 | Enterococcaceae | taxid:81852 | 2/1239 | [+PMIDs] |
| D065626 | Non-alcoholic Fatty Liver Disease | 2/1239 | [+PMIDs] | |
| D007411 | Intestinal Diseases, Parasitic | 2/1239 | [+PMIDs] | |
| D055624 | Methicillin-Resistant Staphylococcus aureus | 2/1239 | [+PMIDs] | |
| D000069976 | Bacillus licheniformis | taxid:1402 | 2/1239 | [+PMIDs] |
| D005293 | Ferritins | 9007-73-2 | 2/1239 | [+PMIDs] |
| D015723 | Gene Library | 2/1239 | [+PMIDs] | |
| D002168 | Campylobacter fetus | taxid:196 | 2/1239 | [+PMIDs] |
| D014765 | Viral Vaccines | 2/1239 | [+PMIDs] | |
| D016776 | Blastocystis Infections | 2/1239 | [+PMIDs] | |
| D005638 | Fruit | 2/1239 | [+PMIDs] | |
| D000080224 | Animal Proteins, Dietary | 2/1239 | [+PMIDs] | |
| D000369 | Aged, 80 and over | 2/1239 | [+PMIDs] | |
| D005223 | Fats | 2/1239 | [+PMIDs] | |
| D003911 | Dextrans | 0 7sa290yk68 9004-54-0 jy83shx053 k3r6zdh4du | 2/1239 | [+PMIDs] |
| D014131 | Trace Elements | 2/1239 | [+PMIDs] | |
| D019453 | Escherichia coli O157 | taxid:1045010 | 2/1239 | [+PMIDs] |
| D008107 | Liver Diseases | 2/1239 | [+PMIDs] | |
| D047071 | beta-Glucans | 2/1239 | [+PMIDs] | |
| D006020 | Glycopeptides | 2/1239 | [+PMIDs] | |
| D010758 | Phosphorus | 27ylu75u4w 7723-14-0 | 2/1239 | [+PMIDs] |
| D065507 | Vancomycin-Resistant Enterococci | 2/1239 | [+PMIDs] | |
| D000069999 | Lactobacillus johnsonii | taxid:33959 | 2/1239 | [+PMIDs] |
| D003300 | Copper | 789u1901c5 7440-50-8 | 2/1239 | [+PMIDs] |
| D001007 | Anxiety | 2/1239 | [+PMIDs] | |
| D005419 | Flavonoids | 2/1239 | [+PMIDs] | |
| D005767 | Gastrointestinal Diseases | 2/1239 | [+PMIDs] | |
| D013011 | Sorbic Acid | x045wj989b 110-44-1 1vpu26jzz4 tgw6q2ccvm | 2/1239 | [+PMIDs] |
| D018942 | Macrolides | 2/1239 | [+PMIDs] | |
| D012337 | RNA, Ribosomal, 18S | 1/1239 | [+PMIDs] | |
| D012116 | Resins, Plant | 1/1239 | [+PMIDs] | |
| D015663 | Osteoporosis, Postmenopausal | 1/1239 | [+PMIDs] | |
| D010118 | Oxytetracycline | x20i9en955 14206-58-7 15000-39-2 2058-46-0 35259-39-3 4u7k4n52zm 6153-64-6 6153-65-7 64038-91-1 69766-62-7 7179-50-2 79-57-2 c8mrz07fdv slf0d9077s | 1/1239 | [+PMIDs] |
| D017000 | Campylobacter coli | taxid:195 | 1/1239 | [+PMIDs] |
| D009842 | Oligopeptides | 1/1239 | [+PMIDs] | |
| D018840 | HSP70 Heat-Shock Proteins | 1/1239 | [+PMIDs] | |
| D009178 | Mycoplasmataceae | taxid:2092 | 1/1239 | [+PMIDs] |
| D002954 | Citrobacter | taxid:544 | 1/1239 | [+PMIDs] |
| D011085 | Polycystic Ovary Syndrome | 1/1239 | [+PMIDs] | |
| D006095 | Gram-Positive Cocci | 1/1239 | [+PMIDs] | |
| D002210 | Caprylates | 1/1239 | [+PMIDs] | |
| D013203 | Staphylococcal Infections | 1/1239 | [+PMIDs] | |
| D013766 | 5-Methyltetrahydrofolate-Homocysteine S-Methyltransferase | ec 9033-23-2 | 1/1239 | [+PMIDs] |
| D012503 | Saponins | 1/1239 | [+PMIDs] | |
| D016053 | RNA, Protozoan | 1/1239 | [+PMIDs] | |
| D052197 | Lactobacillus fermentum | taxid:1613 | 1/1239 | [+PMIDs] |
| D007711 | Klebsiella pneumoniae | taxid:573 | 1/1239 | [+PMIDs] |
| D009243 | NAD | 0u46u6e8uk 4j24dq0916 53-84-9 | 1/1239 | [+PMIDs] |
| D009528 | Nicarbazin | 11p9nua12u 330-95-0 | 1/1239 | [+PMIDs] |
| D016996 | Rickettsieae | taxid:33988 | 1/1239 | [+PMIDs] |
| D005690 | Galactose | x2rn3q8dne 26566-61-0 | 1/1239 | [+PMIDs] |
| D018696 | Neuroprotective Agents | 1/1239 | [+PMIDs] | |
| D001068 | Feeding and Eating Disorders | 1/1239 | [+PMIDs] | |
| D061327 | Verrucomicrobia | taxid:74201 | 1/1239 | [+PMIDs] |
| D019422 | Dietary Sucrose | 1/1239 | [+PMIDs] | |
| D002686 | Chitin | 1398-61-4 | 1/1239 | [+PMIDs] |
| D007328 | Insulin | 1/1239 | [+PMIDs] | |
| D003404 | Creatinine | ayi8ex34eu 60-27-5 | 1/1239 | [+PMIDs] |
| D002675 | Child, Preschool | 1/1239 | [+PMIDs] | |
| D066256 | Raw Foods | 1/1239 | [+PMIDs] | |
| D011552 | Pseudomonas Infections | 1/1239 | [+PMIDs] | |
| D051556 | Hyperbilirubinemia, Neonatal | 1/1239 | [+PMIDs] | |
| D010649 | Phenylalanine | 47e5o17y3r 3617-44-5 63-91-2 | 1/1239 | [+PMIDs] |
| D054388 | Receptors, CCR | 1/1239 | [+PMIDs] | |
| D011392 | Proline | 9dlq4ciu6v 147-85-3 | 1/1239 | [+PMIDs] |
| D001992 | Bronchoalveolar Lavage Fluid | 1/1239 | [+PMIDs] | |
| D009124 | Muscle Proteins | 1/1239 | [+PMIDs] | |
| D016753 | Interleukin-10 | 130068-27-8 | 1/1239 | [+PMIDs] |
| D000069979 | Bacillus pumilus | taxid:1408 | 1/1239 | [+PMIDs] |
| D018175 | Birnaviridae Infections | 1/1239 | [+PMIDs] | |
| D000855 | Anorexia | 1/1239 | [+PMIDs] | |
| D015848 | Interleukin-5 | 1/1239 | [+PMIDs] | |
| D003922 | Diabetes Mellitus, Type 1 | 1/1239 | [+PMIDs] | |
| D009569 | Nitric Oxide | 31c4ky9esh 10102-43-9 | 1/1239 | [+PMIDs] |
| D010088 | Oxidoreductases | ec | 1/1239 | [+PMIDs] |
| D044967 | Serum | 1/1239 | [+PMIDs] | |
| D010024 | Osteoporosis | 1/1239 | [+PMIDs] | |
| D007770 | L-Lactate Dehydrogenase | ec | 1/1239 | [+PMIDs] |
| D000077185 | Resveratrol | q369o8926l aua0k06fsb | 1/1239 | [+PMIDs] |
| D005990 | Glycerol | pdc6a3c0ox 56-81-5 | 1/1239 | [+PMIDs] |
| D003276 | Contraceptives, Oral | 1/1239 | [+PMIDs] | |
| D018830 | Adhesins, Escherichia coli | 1/1239 | [+PMIDs] | |
| D014157 | Transcription Factors | 1/1239 | [+PMIDs] | |
| D003094 | Collagen | 9007-34-5 | 1/1239 | [+PMIDs] |
| D050171 | Dyslipidemias | 1/1239 | [+PMIDs] | |
| D013411 | Sulfadiazine | 0n7609k889 5fe7hp0jmg 68-35-9 | 1/1239 | [+PMIDs] |
| D013290 | Streptococcal Infections | 1/1239 | [+PMIDs] | |
| D008274 | Magnesium | i38zp9992a 7439-95-4 | 1/1239 | [+PMIDs] |
| D019207 | beta Carotene | 01yae03m7j 7235-40-7 | 1/1239 | [+PMIDs] |
| D013145 | Spirochaetales Infections | 1/1239 | [+PMIDs] | |
| D000071198 | Pyrin | 1/1239 | [+PMIDs] | |
| D008795 | Metronidazole | 140qmo216e 443-48-1 69198-10-3 73334-05-1 76jc1633uf l500pr95qa | 1/1239 | [+PMIDs] |
| D063388 | Endocannabinoids | 1/1239 | [+PMIDs] | |
| D001425 | Bacterial Outer Membrane Proteins | 1/1239 | [+PMIDs] | |
| D005632 | Fructose | 30237-26-4 | 1/1239 | [+PMIDs] |
| D013212 | Staphylococcus epidermidis | taxid:1282 | 1/1239 | [+PMIDs] |
| D044602 | Cellulases | ec ec | 1/1239 | [+PMIDs] |
| D008894 | Milk Proteins | 1/1239 | [+PMIDs] | |
| D053645 | Interleukin-2 Receptor alpha Subunit | 1/1239 | [+PMIDs] | |
| D011887 | Raffinose | n5o3qu595m 512-69-6 | 1/1239 | [+PMIDs] |
| D007225 | Infant Food | 1/1239 | [+PMIDs] | |
| D019343 | Citric Acid | 2968phw8qp 77-92-9 xf417d3psl | 1/1239 | [+PMIDs] |
| D062407 | Meals | 1/1239 | [+PMIDs] | |
| D001409 | Bacillus cereus | taxid:1396 | 1/1239 | [+PMIDs] |
| D024821 | Metabolic Syndrome | 1/1239 | [+PMIDs] | |
| D019787 | Linoleic Acid | 9kjl21t0qj 19704-83-7 2197-37-7 2420-42-0 2420-55-5 3131-66-6 3414-89-9 506-21-8 57431-47-7 60-33-3 7721-14-4 822-17-3 | 1/1239 | [+PMIDs] |
| D004338 | Drug Combinations | 1/1239 | [+PMIDs] | |
| D018122 | B7-1 Antigen | 1/1239 | [+PMIDs] | |
| D009093 | Mucus | 1/1239 | [+PMIDs] | |
| D015534 | Trans-Activators | 1/1239 | [+PMIDs] | |
| D005512 | Food Hypersensitivity | 1/1239 | [+PMIDs] | |
| D006655 | Histone Deacetylases | ec ec | 1/1239 | [+PMIDs] |
| D015125 | Oxyquinoline | 5utx5635hp 12557-04-9 134-31-6 148-24-3 61vug75y3p | 1/1239 | [+PMIDs] |
| D009202 | Cardiomyopathies | 1/1239 | [+PMIDs] | |
| D000319 | Adrenergic beta-Antagonists | 1/1239 | [+PMIDs] | |
| D020345 | Enterocolitis, Necrotizing | 1/1239 | [+PMIDs] | |
| D010940 | Plant Proteins | 1/1239 | [+PMIDs] | |
| D002368 | Castor Oil | 8001-79-4 | 1/1239 | [+PMIDs] |
| D014810 | Vitamin E | 1406-18-4 | 1/1239 | [+PMIDs] |
| D012710 | Serum Albumin, Bovine | 27432cm55q | 1/1239 | [+PMIDs] |
| D001441 | Bacteroides fragilis | taxid:817 | 1/1239 | [+PMIDs] |
| D000073182 | Carbapenem-Resistant Enterobacteriaceae | 1/1239 | [+PMIDs] | |
| D005965 | Glucuronates | 1/1239 | [+PMIDs] | |
| D012661 | Semen | 1/1239 | [+PMIDs] | |
| D013292 | Streptococcus agalactiae | taxid:1311 | 1/1239 | [+PMIDs] |
| D007106 | Immune Sera | 1/1239 | [+PMIDs] | |
| D008043 | Linseed Oil | 8001-26-1 | 1/1239 | [+PMIDs] |
| D007633 | Keratins | 68238-35-7 9008-18-8 | 1/1239 | [+PMIDs] |
| D025241 | Spondylarthritis | 1/1239 | [+PMIDs] | |
| D030262 | Soybean Proteins | 1/1239 | [+PMIDs] | |
| D020782 | Matrix Metalloproteinases | ec | 1/1239 | [+PMIDs] |
| D016899 | Interferon-beta | 77238-31-4 | 1/1239 | [+PMIDs] |
| D013893 | Thiram | 0d771is0fh 137-26-8 | 1/1239 | [+PMIDs] |
| D051538 | Hepatocyte Nuclear Factor 1-alpha | 1/1239 | [+PMIDs] | |
| D020382 | Interleukin-18 | 1/1239 | [+PMIDs] | |
| D043884 | Receptor, Cannabinoid, CB1 | 1/1239 | [+PMIDs] | |
| D007567 | Jaundice, Neonatal | 1/1239 | [+PMIDs] | |
| D042845 | Laccase | ec 80498-15-3 ec | 1/1239 | [+PMIDs] |
| D008780 | Methyltransferases | ec 9033-25-4 | 1/1239 | [+PMIDs] |
| D003474 | Curcumin | it942zth98 458-37-7 | 1/1239 | [+PMIDs] |
| D013729 | Terpenes | 1/1239 | [+PMIDs] | |
| D051176 | beta Catenin | 1/1239 | [+PMIDs] | |
| D015232 | Dinoprostone | k7q1jqr04m 363-24-6 | 1/1239 | [+PMIDs] |
| D015347 | RNA Probes | 1/1239 | [+PMIDs] | |
| D018955 | CD36 Antigens | 1/1239 | [+PMIDs] | |
| D005230 | Fatty Acids, Nonesterified | 1/1239 | [+PMIDs] | |
| D010446 | Peptide Fragments | 1/1239 | [+PMIDs] | |
| D007211 | Indoles | 1/1239 | [+PMIDs] | |
| D053711 | Interleukin-12 Receptor beta 1 Subunit | 1/1239 | [+PMIDs] | |
| D008315 | Malondialdehyde | 4y8f71g49q 542-78-9 zrm642yyue | 1/1239 | [+PMIDs] |
| D021183 | Peanut Hypersensitivity | 1/1239 | [+PMIDs] | |
| D014245 | Trichomonas Infections | 1/1239 | [+PMIDs] | |
| D006509 | Hepatitis B | 1/1239 | [+PMIDs] | |
| D007782 | Lactoglobulins | 1/1239 | [+PMIDs] | |
| D005949 | Glucose Oxidase | ec | 1/1239 | [+PMIDs] |
| D047309 | Flavones | 1/1239 | [+PMIDs] | |
| D008055 | Lipids | 1/1239 | [+PMIDs] | |
| D019641 | DNA, Archaeal | 1/1239 | [+PMIDs] | |
| D006147 | Guanine | 5z93l87a1r 73-40-5 | 1/1239 | [+PMIDs] |
| D015431 | Weight Loss | 1/1239 | [+PMIDs] | |
| D018556 | Crops, Agricultural | 1/1239 | [+PMIDs] | |
| D003428 | Cross Infection | 1/1239 | [+PMIDs] | |
| D008171 | Lung Diseases | 1/1239 | [+PMIDs] | |
| D001008 | Anxiety Disorders | 1/1239 | [+PMIDs] | |
| D006454 | Hemoglobins | 1/1239 | [+PMIDs] | |
| D011794 | Quercetin | 9ikm0i5t1e 117-39-5 | 1/1239 | [+PMIDs] |
| D008345 | Manganese | 42z2k6zl8p 7439-96-5 | 1/1239 | [+PMIDs] |
| D005973 | Glutamine | 0rh81l854j 56-85-9 6899-04-3 | 1/1239 | [+PMIDs] |
| D039821 | Monoterpenes | 1/1239 | [+PMIDs] | |
| D058086 | Microalgae | 1/1239 | [+PMIDs] | |
| D014199 | Trehalose | b8wck70t7i 99-20-7 | 1/1239 | [+PMIDs] |
| D010456 | Peptides, Cyclic | 1/1239 | [+PMIDs] | |
| D009419 | Nerve Tissue Proteins | 1/1239 | [+PMIDs] | |
| D013394 | Sucrase-Isomaltase Complex | ec | 1/1239 | [+PMIDs] |
| D054308 | Enteropathogenic Escherichia coli | 1/1239 | [+PMIDs] | |
| D000080305 | Pork Meat | 1/1239 | [+PMIDs] | |
| D000617 | Aminoglycosides | 1/1239 | [+PMIDs] | |
| D010505 | Familial Mediterranean Fever | 1/1239 | [+PMIDs] | |
| D003047 | Coccidioidomycosis | 1/1239 | [+PMIDs] | |
| D014674 | Plant Proteins, Dietary | 1/1239 | [+PMIDs] | |
| D000071256 | Uncoupling Protein 1 | 1/1239 | [+PMIDs] | |
| D020536 | Enzyme Activators | 1/1239 | [+PMIDs] | |
| D003141 | Communicable Diseases | 1/1239 | [+PMIDs] | |
| D009328 | Nebramycin | 11048-13-8 | 1/1239 | [+PMIDs] |
| D016979 | Pasteurella multocida | taxid:747 | 1/1239 | [+PMIDs] |
| D018528 | ATP-Binding Cassette Transporters | 1/1239 | [+PMIDs] | |
| D011986 | Receptors, Somatotropin | 1/1239 | [+PMIDs] | |
| D062446 | Claudin-2 | 1/1239 | [+PMIDs] | |
| D003092 | Colitis | 1/1239 | [+PMIDs] | |
| D005659 | Fungicides, Industrial | 1/1239 | [+PMIDs] | |
| D014803 | Vitamin B Complex | 12001-76-2 | 1/1239 | [+PMIDs] |
| D060825 | Cognitive Dysfunction | 1/1239 | [+PMIDs] | |
| D004756 | Enterobacteriaceae Infections | 1/1239 | [+PMIDs] | |
| D001205 | Ascorbic Acid | pq6ck8pd0r 0n1g678593 134-03-2 50-81-7 s033eh8359 | 1/1239 | [+PMIDs] |
| D000193 | Actinomycetales Infections | 1/1239 | [+PMIDs] | |
| D016827 | CD8 Antigens | 1/1239 | [+PMIDs] | |
| D015014 | Yogurt | 1/1239 | [+PMIDs] | |
| D003373 | Coumaric Acids | 1/1239 | [+PMIDs] | |
| D000257 | Adenoviridae Infections | 1/1239 | [+PMIDs] | |
| D015008 | Yersinia enterocolitica | taxid:630 | 1/1239 | [+PMIDs] |
| D011549 | Pseudomonas | taxid:286 | 1/1239 | [+PMIDs] |
| D001413 | Bacillus thuringiensis | taxid:1428 | 1/1239 | [+PMIDs] |
| D009183 | Mycotoxins | 1/1239 | [+PMIDs] | |
| D001501 | Bdellovibrio | taxid:958 | 1/1239 | [+PMIDs] |
| D014806 | Vitamin B 12 Deficiency | 1/1239 | [+PMIDs] | |
| D055231 | Lincosamides | 1/1239 | [+PMIDs] | |
| D011550 | Pseudomonas aeruginosa | taxid:287 | 1/1239 | [+PMIDs] |
| D005673 | Fusobacterium | taxid:848 | 1/1239 | [+PMIDs] |
| D016651 | Lithium Carbonate | 2bmd2gna4v 10377-37-4 554-13-2 | 1/1239 | [+PMIDs] |
| D012259 | Ribonuclease, Pancreatic | ec | 1/1239 | [+PMIDs] |
| D000276 | Adjuvants, Immunologic | 1/1239 | [+PMIDs] | |
| D010322 | Parvoviridae Infections | 1/1239 | [+PMIDs] | |
| D004485 | Eczema | 1/1239 | [+PMIDs] | |
| D013482 | Superoxide Dismutase | ec | 1/1239 | [+PMIDs] |
| D021181 | Egg Hypersensitivity | 1/1239 | [+PMIDs] | |
| D011985 | Receptors, Serotonin | 1/1239 | [+PMIDs] | |
| D004760 | Enterocolitis | 1/1239 | [+PMIDs] | |
| D000914 | Antibodies, Viral | 1/1239 | [+PMIDs] | |
| D062445 | Claudin-1 | 1/1239 | [+PMIDs] | |
| D015061 | 1,4-alpha-Glucan Branching Enzyme | ec 9001-97-2 | 1/1239 | [+PMIDs] |
| D001599 | Berberine | 0i8y3p32uf 2086-83-1 | 1/1239 | [+PMIDs] |
| D028061 | Phosphate Transport Proteins | 1/1239 | [+PMIDs] | |
| D005971 | Glutamates | 1/1239 | [+PMIDs] | |
| D008892 | Milk | 1/1239 | [+PMIDs] | |
| D009711 | Nucleotides | 1/1239 | [+PMIDs] | |
| D017487 | Ankyrins | 1/1239 | [+PMIDs] | |
| D000806 | Angiotensin-Converting Enzyme Inhibitors | 1/1239 | [+PMIDs] | |
| D011429 | Propolis | 9009-62-5 | 1/1239 | [+PMIDs] |
| D008759 | Methylglycosides | 1/1239 | [+PMIDs] | |
| D061046 | Biological Control Agents | 1/1239 | [+PMIDs] | |
| D005916 | Globulins | 1/1239 | [+PMIDs] | |
| D013656 | Taurocholic Acid | 5e090o0g3z 120600-27-3 145-42-6 59005-70-8 81-24-3 86386-60-9 m6n3th81no | 1/1239 | [+PMIDs] |
| D004889 | Erysipelothrix Infections | 1/1239 | [+PMIDs] | |
| D004187 | Disaccharides | 1/1239 | [+PMIDs] | |
| D005393 | Fish Diseases | 1/1239 | [+PMIDs] | |
| D006877 | Hydroxamic Acids | 1/1239 | [+PMIDs] | |
| D007934 | Leuconostoc | taxid:1243 | 1/1239 | [+PMIDs] |
| D008164 | Luminescent Proteins | 1/1239 | [+PMIDs] | |
| D005664 | Furazolidone | 5j9cpu3re0 67-45-8 | 1/1239 | [+PMIDs] |
| D018950 | Lipopolysaccharide Receptors | 1/1239 | [+PMIDs] | |
| D013289 | Streptococcaceae | taxid:1300 | 1/1239 | [+PMIDs] |
| D012820 | Silage | 1/1239 | [+PMIDs] | |
| D057127 | Single-Chain Antibodies | 1/1239 | [+PMIDs] | |
| D014508 | Urea | 8w8t17847w 57-13-6 | 1/1239 | [+PMIDs] |
| D014675 | Vegetables | 1/1239 | [+PMIDs] | |
| D003863 | Depression | 1/1239 | [+PMIDs] | |
| D008627 | Mercuric Chloride | 53gh7mzt1r 7487-94-7 | 1/1239 | [+PMIDs] |
| D014640 | Vancomycin | 6q205eh1vu 1404-90-6 1404-93-9 64685-75-2 71wo621tjd 98213-11-7 98301-28-1 | 1/1239 | [+PMIDs] |
| D004527 | Egg Proteins | 1/1239 | [+PMIDs] | |
| D051198 | Toll-Like Receptor 5 | 1/1239 | [+PMIDs] | |
| D013267 | Stilbenes | 1/1239 | [+PMIDs] | |
| D003176 | Complement C3 | 1/1239 | [+PMIDs] | |
| D000998 | Antiviral Agents | 1/1239 | [+PMIDs] | |
| D009942 | Organometallic Compounds | 1/1239 | [+PMIDs] | |
| D000067030 | Fruit and Vegetable Juices | 1/1239 | [+PMIDs] | |
| D008063 | Thioctic Acid | 73y7p0k73y 62-46-4 | 1/1239 | [+PMIDs] |
| D017392 | Thiobarbituric Acid Reactive Substances | 1/1239 | [+PMIDs] | |
| D009174 | Mycoplasma | taxid:2093 | 1/1239 | [+PMIDs] |
| D000894 | Anti-Inflammatory Agents, Non-Steroidal | 1/1239 | [+PMIDs] | |
| D006867 | Hydrolases | ec | 1/1239 | [+PMIDs] |
| D053474 | Nod1 Signaling Adaptor Protein | 1/1239 | [+PMIDs] | |
| D016937 | Gram-Positive Endospore-Forming Rods | 1/1239 | [+PMIDs] | |
| D016650 | Fluorescein-5-isothiocyanate | i223nx31w9 27072-45-3 3326-32-7 63469-13-6 | 1/1239 | [+PMIDs] |
| D004224 | Diterpenes | 1/1239 | [+PMIDs] | |
| D008757 | Methylglucosides | 1/1239 | [+PMIDs] | |
| D000970 | Antineoplastic Agents | 1/1239 | [+PMIDs] | |
| D056507 | Paenibacillus | taxid:44249 | 1/1239 | [+PMIDs] |
| D007930 | Leucine | gmw67qnf9c 61-90-5 7005-03-0 | 1/1239 | [+PMIDs] |
| D055666 | Lipopeptides | 1/1239 | [+PMIDs] | |
| D022361 | Escherichia coli Vaccines | 1/1239 | [+PMIDs] | |
| D011956 | Receptors, Cell Surface | 1/1239 | [+PMIDs] | |
| D015662 | Trimethoprim, Sulfamethoxazole Drug Combination | 8064-90-2 | 1/1239 | [+PMIDs] |
| D006017 | Glycolipids | 1/1239 | [+PMIDs] | |
| D018554 | Avena | 1/1239 | [+PMIDs] | |
| D015011 | Yersinia pseudotuberculosis | taxid:633 | 1/1239 | [+PMIDs] |
| D009503 | Neutropenia | 1/1239 | [+PMIDs] | |
| D006632 | Histamine | 820484n8i3 3poa0q644u 51-45-6 | 1/1239 | [+PMIDs] |
| D000070005 | Bifidobacterium adolescentis | taxid:1680 | 1/1239 | [+PMIDs] |
| D005231 | Fatty Acids, Unsaturated | 1/1239 | [+PMIDs] | |
| D011513 | Proteus mirabilis | taxid:584 | 1/1239 | [+PMIDs] |
| D002857 | Chromium | 0r0008q3jb 7440-47-3 | 1/1239 | [+PMIDs] |
| D000199 | Actins | 1/1239 | [+PMIDs] | |
| D012709 | Serum Albumin | 1/1239 | [+PMIDs] | |
| D010840 | Phytosterols | 1/1239 | [+PMIDs] | |
| D014639 | Vanadium | 00j9j9xkde 7440-62-2 | 1/1239 | [+PMIDs] |
| D003596 | Cytosine | 8j337d1hzy 71-30-7 | 1/1239 | [+PMIDs] |
| D000935 | Antifungal Agents | 1/1239 | [+PMIDs] | |
| D014807 | Vitamin D | 1406-16-2 | 1/1239 | [+PMIDs] |
| D000707 | Anaphylaxis | 1/1239 | [+PMIDs] | |
| D005656 | Fungal Proteins | 1/1239 | [+PMIDs] | |
| D003181 | Complement C4 | 1/1239 | [+PMIDs] | |
| D013211 | Staphylococcus aureus | taxid:1280 | 1/1239 | [+PMIDs] |
| D010876 | Pipemidic Acid | lt12j5hvr8 51940-44-4 | 1/1239 | [+PMIDs] |
| D007794 | Lameness, Animal | 1/1239 | [+PMIDs] | |
| D015847 | Interleukin-4 | 207137-56-2 | 1/1239 | [+PMIDs] |
| D027101 | DNA Topoisomerase IV | ec | 1/1239 | [+PMIDs] |
| D015850 | Interleukin-6 | 1/1239 | [+PMIDs] | |
| D013304 | Streptomyces aureofaciens | taxid:1894 | 1/1239 | [+PMIDs] |
| D000670 | Amprolium | h2t307kmzr 137-88-2 71m75t660b 95co6n199q | 1/1239 | [+PMIDs] |
| D012645 | Selenomethionine | 964mrk2pel 13091-98-0 1464-42-2 2578-28-1 3211-76-5 61125-47-1 p6708e7555 | 1/1239 | [+PMIDs] |
| D013577 | Syndrome | 1/1239 | [+PMIDs] | |
| D000432 | Methanol | y4s76jwi15 67-56-1 ig663u5emc | 1/1239 | [+PMIDs] |
| D004952 | Esters | 1/1239 | [+PMIDs] | |
| D015525 | Fatty Acids, Omega-3 | 1/1239 | [+PMIDs] | |
| D011401 | Promoter Regions, Genetic | 1/1239 | [+PMIDs] | |
| D056486 | Chemical and Drug Induced Liver Injury | 1/1239 | [+PMIDs] | |
| D043183 | Irritable Bowel Syndrome | 1/1239 | [+PMIDs] | |
| D007234 | Infant, Premature | 1/1239 | [+PMIDs] | |
| D057911 | Angiotensin Receptor Antagonists | 1/1239 | [+PMIDs] | |
| D000070057 | Paenibacillus polymyxa | taxid:1406 | 1/1239 | [+PMIDs] |
| D008744 | Methylamines | 1/1239 | [+PMIDs] | |
| D009532 | Nickel | 7ov03qg267 7440-02-0 | 1/1239 | [+PMIDs] |
| D006073 | Gout | 1/1239 | [+PMIDs] | |
| D000420 | Albuterol | qf8svz843e 021sef3731 18559-94-9 51022-70-9 | 1/1239 | [+PMIDs] |
| D004075 | Diglycerides | 1/1239 | [+PMIDs] | |
| D002374 | Catalase | ec | 1/1239 | [+PMIDs] |
| D000667 | Ampicillin | 7c782967rd 69-52-3 69-53-4 7177-48-2 hxq6a1n7r6 jfn36l5s8k | 1/1239 | [+PMIDs] |
| D006090 | Gram-Negative Bacteria | 1/1239 | [+PMIDs] | |
| D043325 | Xylan Endo-1,3-beta-Xylosidase | ec 9025-55-2 ec | 1/1239 | [+PMIDs] |
| D010709 | Phosphate Acetyltransferase | ec 9029-91-8 | 1/1239 | [+PMIDs] |
| D015025 | Zearalenone | 5w827m159j 17924-92-4 | 1/1239 | [+PMIDs] |
| D025381 | Streptogramin B | 3131-03-1 | 1/1239 | [+PMIDs] |
| D013144 | Spirochaetales | taxid:136 | 1/1239 | [+PMIDs] |
| D008286 | Malabsorption Syndromes | 1/1239 | [+PMIDs] | |
| D001442 | Bacteroides Infections | 1/1239 | [+PMIDs] | |
| D003967 | Diarrhea | 1/1239 | [+PMIDs] | |
| D013745 | Tetanus Toxoid | 1/1239 | [+PMIDs] | |
| D000067816 | Whey Proteins | 1/1239 | [+PMIDs] | |
| D005461 | Fluorine | 284syp0193 7782-41-4 | 1/1239 | [+PMIDs] |
| D000073893 | Sugars | 1/1239 | [+PMIDs] | |
| D002338 | Carotenoids | 36-88-4 | 1/1239 | [+PMIDs] |
| D019155 | Veterinary Drugs | 1/1239 | [+PMIDs] | |
| D013449 | Sulfonamides | 1/1239 | [+PMIDs] | |
| D014766 | Viremia | 1/1239 | [+PMIDs] | |
| D005221 | Fatigue | 1/1239 | [+PMIDs] | |
| D018160 | Receptors, Cytoplasmic and Nuclear | 1/1239 | [+PMIDs] | |
| D002245 | Carbon Dioxide | 142m471b3j 124-38-9 | 1/1239 | [+PMIDs] |
| D010738 | Type C Phospholipases | ec ec | 1/1239 | [+PMIDs] |
| D003545 | Cysteine | k848jz4886 4371-52-2 52-90-4 7048-04-6 a54x5e4519 zt934n0x4w | 1/1239 | [+PMIDs] |
| D003424 | Crohn Disease | 1/1239 | [+PMIDs] | |
| D007529 | Isoflavones | 1/1239 | [+PMIDs] | |
| D007143 | Immunoglobulin Heavy Chains | 1/1239 | [+PMIDs] | |
| D010326 | Pasteurella Infections | 1/1239 | [+PMIDs] | |
| D020381 | Interleukin-17 | 1/1239 | [+PMIDs] | |
| D004342 | Drug Hypersensitivity | 1/1239 | [+PMIDs] | |
| D006975 | Hypertension, Portal | 1/1239 | [+PMIDs] | |
| D007252 | Influenza Vaccines | 1/1239 | [+PMIDs] | |
| D052196 | Lactobacillus brevis | taxid:1580 | 1/1239 | [+PMIDs] |
| D053583 | Interleukin-1beta | 1/1239 | [+PMIDs] | |
| D042401 | Alcaligenaceae | taxid:506 | 1/1239 | [+PMIDs] |
| D012192 | Retroviridae Infections | 1/1239 | [+PMIDs] | |
| D014357 | Trypsin | ec | 1/1239 | [+PMIDs] |
| D005840 | Gentian Violet | j4z741d6o5 548-62-9 | 1/1239 | [+PMIDs] |
| D006586 | Hexanes | 1/1239 | [+PMIDs] | |
| D016470 | Bacteremia | 1/1239 | [+PMIDs] | |
| D006963 | Hyperphagia | 1/1239 | [+PMIDs] | |
| D018932 | Chemokine CCL2 | 1/1239 | [+PMIDs] | |
| D011492 | Protein Hydrolysates | 1/1239 | [+PMIDs] | |
| D004271 | DNA, Fungal | 1/1239 | [+PMIDs] | |
| D007781 | Lactoferrin | ec | 1/1239 | [+PMIDs] |
| D008094 | Lithium | 9fn79x2m3f 7439-93-2 | 1/1239 | [+PMIDs] |
| D019697 | Onions | 1/1239 | [+PMIDs] | |
| D017400 | Brachyspira | taxid:29521 | 1/1239 | [+PMIDs] |
| D018532 | Peas | 1/1239 | [+PMIDs] | |
| D044182 | Benzylisoquinolines | 1/1239 | [+PMIDs] | |
| D045854 | Veillonellaceae | taxid:31977 | 1/1239 | [+PMIDs] |
| D004042 | Dietary Fats, Unsaturated | 1/1239 | [+PMIDs] | |
| D027682 | Cation Transport Proteins | 1/1239 | [+PMIDs] | |
| D050177 | Overweight | 1/1239 | [+PMIDs] | |
| D015009 | Yersinia Infections | 1/1239 | [+PMIDs] | |
| D019081 | O Antigens | 1/1239 | [+PMIDs] | |
| D029941 | Fish Proteins | 1/1239 | [+PMIDs] | |
| D057134 | Antibodies, Neutralizing | 1/1239 | [+PMIDs] | |
| D007153 | Immunologic Deficiency Syndromes | 1/1239 | [+PMIDs] | |
| D011548 | Pseudomonadaceae | taxid:135621 | 1/1239 | [+PMIDs] |
| D014990 | Xylans | 1/1239 | [+PMIDs] | |
| D036341 | Intercellular Signaling Peptides and Proteins | 1/1239 | [+PMIDs] | |
| D008895 | Milk, Human | 1/1239 | [+PMIDs] | |
| D000086102 | Akkermansia | taxid:239934 | 1/1239 | [+PMIDs] |
| D047392 | beta-Cyclodextrins | 1/1239 | [+PMIDs] | |
| D011070 | Poly I-C | o84c90hh2l 24939-03-5 | 1/1239 | [+PMIDs] |
| D007071 | Immunoglobulin A, Secretory | 1/1239 | [+PMIDs] | |
| D013839 | Thiamphenicol | flq7571npm 15318-45-3 | 1/1239 | [+PMIDs] |
| D006418 | Heme | 42vzt0u6yr 14875-96-8 | 1/1239 | [+PMIDs] |
| D008239 | Lysine | k3z4f929h6 56-87-1 57282-49-2 657-27-2 jnj23q2com ttl6g7liwz | 1/1239 | [+PMIDs] |
| D009097 | Multienzyme Complexes | 1/1239 | [+PMIDs] | |
| D001679 | Biogenic Amines | 1/1239 | [+PMIDs] | |
| D007135 | Immunoglobulin Variable Region | 1/1239 | [+PMIDs] | |
| D015704 | CD4 Antigens | 1/1239 | [+PMIDs] | |
| D045857 | Ruminococcus | taxid:1263 | 1/1239 | [+PMIDs] |
| D000626 | Aminopeptidases | ec | 1/1239 | [+PMIDs] |
| D001420 | Bacteria, Aerobic | 1/1239 | [+PMIDs] | |
| D016054 | DNA, Protozoan | 1/1239 | [+PMIDs] | |
| D006003 | Glycogen | 9005-79-2 | 1/1239 | [+PMIDs] |
| D039741 | Antigens, Dermatophagoides | 1/1239 | [+PMIDs] | |
| D007773 | Lactates | 1/1239 | [+PMIDs] | |
| D007334 | Insulin-Like Growth Factor I | 67763-96-6 | 1/1239 | [+PMIDs] |
| D005492 | Folic Acid | 935e97boy8 21179-34-0 36653-55-1 59-30-3 60672-17-5 6484-89-5 65165-91-5 65165-92-6 78168-16-8 9p9w8ggu78 | 1/1239 | [+PMIDs] |
| D008550 | Melatonin | jl5dk93rcl 73-31-4 | 1/1239 | [+PMIDs] |
| D005839 | Gentamicins | 0 8x7386qrlv t6z9v48ikg | 1/1239 | [+PMIDs] |
| D044404 | Genomic Islands | 1/1239 | [+PMIDs] | |
| D007785 | Lactose | j2b2a4n98g 3sy5lh9pmk 63-42-3 | 1/1239 | [+PMIDs] |
| D005356 | Fibromyalgia | 1/1239 | [+PMIDs] | |
| D010945 | Plants, Edible | 1/1239 | [+PMIDs] | |
| D000972 | Antineoplastic Agents, Phytogenic | 1/1239 | [+PMIDs] | |
| D007232 | Infant, Newborn, Diseases | 1/1239 | [+PMIDs] | |
| D016905 | Gram-Negative Bacterial Infections | 1/1239 | [+PMIDs] | |
| D000410 | Alanine Transaminase | ec | 1/1239 | [+PMIDs] |
| D018076 | DNA, Complementary | 1/1239 | [+PMIDs] | |
| D015796 | HLA-B27 Antigen | 1/1239 | [+PMIDs] | |
| D014212 | Tretinoin | 5688utc01r 13497-05-7 22232-80-0 302-79-4 75980-27-7 | 1/1239 | [+PMIDs] |
| D012367 | RNA, Viral | 1/1239 | [+PMIDs] | |
| D008973 | Tenericutes | taxid:544448 | 1/1239 | [+PMIDs] |
| D008586 | Meningitis, Pneumococcal | 1/1239 | [+PMIDs] | |
| D014994 | Xylose | a1ta934ako | 1/1239 | [+PMIDs] |
| D017191 | Ascaridida Infections | 1/1239 | [+PMIDs] | |
| D011810 | Quinoxalines | 1/1239 | [+PMIDs] | |
| D012313 | RNA | 63231-63-0 | 1/1239 | [+PMIDs] |
| D014737 | Vibrionaceae | taxid:641 | 1/1239 | [+PMIDs] |
| D011509 | Proteoglycans | 1/1239 | [+PMIDs] | |
| D007792 | Lactulose | 4618-18-2 | 1/1239 | [+PMIDs] |
| D007376 | Interleukin-2 | 1/1239 | [+PMIDs] | |
| D001528 | Behcet Syndrome | 1/1239 | [+PMIDs] |