Antimicrobial promotion of pig growth is associated with tissue-specific remodeling of bile acid signature and signaling
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[1] F. Villarroya,et al. Developmental regulation of the intestinal FGF19 system in domestic pigs. , 2018, American journal of physiology. Gastrointestinal and liver physiology.
[2] S. Kliewer,et al. FGF19, FGF21, and an FGFR1/β-Klotho-Activating Antibody Act on the Nervous System to Regulate Body Weight and Glycemia. , 2017, Cell metabolism.
[3] G. Hotamisligil,et al. Foundations of Immunometabolism and Implications for Metabolic Health and Disease. , 2017, Immunity.
[4] L. Kreienbrock,et al. Antibiotic drug usage in pigs in Germany—Are the class profiles changing? , 2017, PloS one.
[5] D. Freyssenet,et al. Fibroblast growth factor 19 regulates skeletal muscle mass and ameliorates muscle wasting in mice , 2017, Nature Medicine.
[6] S. Hazen,et al. Modulation of the gut microbiota impacts nonalcoholic fatty liver disease: a potential role for bile acids[S] , 2017, Journal of Lipid Research.
[7] F. Gonzalez,et al. Farnesoid X receptor induces Takeda G-protein receptor 5 cross-talk to regulate bile acid synthesis and hepatic metabolism , 2017, The Journal of Biological Chemistry.
[8] K. Brown,et al. Antimicrobial growth promoters modulate host responses in mice with a defined intestinal microbiota , 2016, Scientific Reports.
[9] J. Walters,et al. The Farnesoid X Receptor: Good for BAD , 2016, Cellular and molecular gastroenterology and hepatology.
[10] Hanns-Ulrich Marschall,et al. Intestinal Crosstalk between Bile Acids and Microbiota and Its Impact on Host Metabolism. , 2016, Cell metabolism.
[11] F. Jessen,et al. Growth promotion in pigs by oxytetracycline coincides with down regulation of serum inflammatory parameters and of hibernation‐associated protein HP‐27 , 2016, Electrophoresis.
[12] C. Gahan,et al. Bile Acid Modifications at the Microbe-Host Interface: Potential for Nutraceutical and Pharmaceutical Interventions in Host Health. , 2016, Annual review of food science and technology.
[13] P. Hylemon,et al. Consequences of bile salt biotransformations by intestinal bacteria , 2016, Gut microbes.
[14] C. Nyachoti,et al. Gut Health of Pigs: Challenge Models and Response Criteria with a Critical Analysis of the Effectiveness of Selected Feed Additives — A Review , 2015, Asian-Australasian journal of animal sciences.
[15] T. V. van Dijk,et al. Gut microbiota inhibit Asbt-dependent intestinal bile acid reabsorption via Gata4. , 2015, Journal of hepatology.
[16] R. Isaacson,et al. The pig gut microbial diversity: Understanding the pig gut microbial ecology through the next generation high throughput sequencing. , 2015, Veterinary microbiology.
[17] J. Holst,et al. Bile acid mediated effects on gut integrity and performance of early-weaned piglets , 2015, BMC Veterinary Research.
[18] Paul J. Plummer,et al. Veterinary Diagnostic and Production Animal Medicine Publications Veterinary Diagnostic and Production Animal Medicine a Comparative Analysis of Methylome Profiles of Campylobacter Jejuni Sheep Abortion Isolate and Gastroenteric Strains Using Pacbio Data , 2022 .
[19] A. Holmes,et al. Mechanistic links between gut microbial community dynamics, microbial functions and metabolic health. , 2014, World journal of gastroenterology.
[20] K. Klasing,et al. Changes in the amount of lysine in protective proteins and immune cells after a systemic response to dead Escherichia coli: implications for the nutritional costs of immunity. , 2014, Integrative and comparative biology.
[21] J. Zentek,et al. Effect of dietary zinc oxide on jejunal morphological and immunological characteristics in weaned piglets. , 2014, Journal of animal science.
[22] G. Bruckner,et al. The Immunomodulatory Role of Bile Acids , 2014, International Archives of Allergy and Immunology.
[23] M. Blaser,et al. Altering the Intestinal Microbiota during a Critical Developmental Window Has Lasting Metabolic Consequences , 2014, Cell.
[24] N. Bunnett. Neuro‐humoral signalling by bile acids and the TGR5 receptor in the gastrointestinal tract , 2014, The Journal of physiology.
[25] E. Silbergeld,et al. Learning from agriculture: understanding low-dose antimicrobials as drivers of resistome expansion , 2014, Front. Microbiol..
[26] C. Klaassen,et al. Effect of various antibiotics on modulation of intestinal microbiota and bile acid profile in mice. , 2014, Toxicology and applied pharmacology.
[27] C. Hill,et al. Regulation of host weight gain and lipid metabolism by bacterial bile acid modification in the gut , 2014, Proceedings of the National Academy of Sciences.
[28] P. Hylemon,et al. Bile acids and the gut microbiome , 2014, Current opinion in gastroenterology.
[29] J. Zentek,et al. Effect of Dietary Zinc Oxide on Morphological Characteristics, Mucin Composition and Gene Expression in the Colon of Weaned Piglets , 2014, PloS one.
[30] Jun Lin. Antibiotic growth promoters enhance animal production by targeting intestinal bile salt hydrolase and its producers , 2014, Front. Microbiol..
[31] J. Zentek,et al. The impact of high dietary zinc oxide on the development of the intestinal microbiota in weaned piglets. , 2014, FEMS microbiology ecology.
[32] James B. Mitchell,et al. Microbiome remodelling leads to inhibition of intestinal farnesoid X receptor signalling and decreased obesity , 2013, Nature Communications.
[33] P. Edwards,et al. Pleiotropic roles of bile acids in metabolism. , 2013, Cell metabolism.
[34] B. Stoll,et al. Digestive physiology of the pig symposium: intestinal bile acid sensing is linked to key endocrine and metabolic signaling pathways. , 2013, Journal of animal science.
[35] Heather K. Allen,et al. Treatment, promotion, commotion: antibiotic alternatives in food-producing animals. , 2013, Trends in microbiology.
[36] R. Gimeno,et al. The breadth of FGF21's metabolic actions are governed by FGFR1 in adipose tissue. , 2013, Molecular metabolism.
[37] B. White,et al. Microbial shifts in the swine distal gut in response to the treatment with antimicrobial growth promoter, tylosin , 2012, Proceedings of the National Academy of Sciences.
[38] J. Dewulf,et al. Prophylactic and metaphylactic antimicrobial use in Belgian fattening pig herds. , 2012, Preventive veterinary medicine.
[39] M. Blaser,et al. Antibiotics in early life alter the murine colonic microbiome and adiposity , 2012, Nature.
[40] F. Bäckhed,et al. Gut microbiota regulates bile acid metabolism by reducing the levels of tauro-beta-muricholic acid, a naturally occurring FXR antagonist. , 2013, Cell metabolism.
[41] S. Kliewer,et al. Endocrine fibroblast growth factors 15/19 and 21: from feast to famine. , 2012, Genes & development.
[42] Robert D. Stedtfeld,et al. In-feed antibiotic effects on the swine intestinal microbiome , 2012, Proceedings of the National Academy of Sciences.
[43] P. Bosi,et al. Feed supplemented with 3 different antibiotics improved food intake and decreased the activation of the humoral immune response in healthy weaned pigs but had differing effects on intestinal microbiota. , 2011, Journal of animal science.
[44] G. Bifulco,et al. The Bile Acid Receptor GPBAR-1 (TGR5) Modulates Integrity of Intestinal Barrier and Immune Response to Experimental Colitis , 2011, PloS one.
[45] J. Kastelic,et al. Non-therapeutic administration of a model antimicrobial growth promoter modulates intestinal immune responses , 2011, Gut pathogens.
[46] S. Kliewer,et al. FGF19 as a Postprandial, Insulin-Independent Activator of Hepatic Protein and Glycogen Synthesis , 2011, Science.
[47] P. Siersema,et al. Farnesoid X receptor activation inhibits inflammation and preserves the intestinal barrier in inflammatory bowel disease , 2011, Gut.
[48] E. Want,et al. Systemic gut microbial modulation of bile acid metabolism in host tissue compartments , 2010, Proceedings of the National Academy of Sciences.
[49] C. Nyachoti,et al. Strategic use of feed ingredients and feed additives to stimulate gut health and development in young pigs. , 2010 .
[50] William A. Walters,et al. QIIME allows analysis of high-throughput community sequencing data , 2010, Nature Methods.
[51] M. Krasowski,et al. Bile salts of vertebrates: structural variation and possible evolutionary significance[S] , 2010, Journal of Lipid Research.
[52] E. Distrutti,et al. The Bile Acid Receptor FXR Is a Modulator of Intestinal Innate Immunity1 , 2009, The Journal of Immunology.
[53] Sushant Bhatnagar,et al. Fibroblast Growth Factor-19, a Novel Factor That Inhibits Hepatic Fatty Acid Synthesis* , 2009, Journal of Biological Chemistry.
[54] K. Wikvall,et al. Species-specific and age-dependent bile acid composition: aspects on CYP8B and CYP4A subfamilies in bile acid biosynthesis. , 2008, Current drug metabolism.
[55] T. Niewold. The nonantibiotic anti-inflammatory effect of antimicrobial growth promoters, the real mode of action? A hypothesis. , 2007, Poultry science.
[56] S. Kliewer,et al. Regulation of antibacterial defense in the small intestine by the nuclear bile acid receptor. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[57] Dae-Joong Kang,et al. Bile salt biotransformations by human intestinal bacteria Published, JLR Papers in Press, November 18, 2005. , 2006, Journal of Lipid Research.
[58] S. Kliewer,et al. Fibroblast growth factor 15 functions as an enterohepatic signal to regulate bile acid homeostasis. , 2005, Cell metabolism.
[59] B. B. Jensen,et al. Influence of Dietary Zinc Oxide and Copper Sulfate on the Gastrointestinal Ecosystem in Newly Weaned Piglets , 2005, Applied and Environmental Microbiology.
[60] J. Dibner,et al. Antibiotic growth promoters in agriculture: history and mode of action. , 2005, Poultry science.
[61] Sander M Houten,et al. Bile acids lower triglyceride levels via a pathway involving FXR, SHP, and SREBP-1c. , 2004, The Journal of clinical investigation.
[62] H. Stein. EXPERIENCE OF FEEDING PIGS WITHOUT ANTIBIOTICS: A EUROPEAN PERSPECTIVE , 2002, Animal biotechnology.
[63] H. Gaskins,et al. ANTIBIOTICS AS GROWTH PROMOTANTS:MODE OF ACTION , 2002, Animal biotechnology.
[64] Gary L. Cromwell,et al. WHY AND HOW ANTIBIOTICS ARE USED IN SWINE PRODUCTION , 2002, Animal biotechnology.
[65] A. Salyers. AN OVERVIEW OF THE GENETIC BASIS OF ANTIBIOTIC RESISTANCE IN BACTERIA AND ITS IMPLICATIONS FOR AGRICULTURE , 2002, Animal biotechnology.
[66] C. Kahn,et al. Insulin signalling and the regulation of glucose and lipid metabolism , 2001, Nature.
[67] Yvonne Neudorf. Good To Be Bad , 2016 .
[68] M. Trauner,et al. Bile acid receptors as targets for drug development , 2014, Nature Reviews Gastroenterology &Hepatology.
[69] W. Witte,et al. Antibiotic resistance. , 2013, International journal of medical microbiology : IJMM.
[70] J. Holst,et al. Enteral bile acid treatment improves parenteral nutrition-related liver disease and intestinal mucosal atrophy in neonatal pigs. , 2012, American journal of physiology. Gastrointestinal and liver physiology.
[71] Stacey A. Jones. Physiology of FGF15/19. , 2012, Advances in experimental medicine and biology.
[72] D. Little,et al. Stress signaling pathways activated by weaning mediate intestinal dysfunction in the pig. , 2007, American journal of physiology. Gastrointestinal and liver physiology.
[73] Alison Willis,et al. Mode of Action , 2020, Definitions.
[74] C. Pine,et al. A European perspective. , 1996, Community dental health.
[75] M. Mortimore. From feast to famine , 1989 .