A diet rich in fermentable fiber promotes robust changes in the intestinal microbiota, mitigates intestinal permeability, and attenuates autoimmune uveitis
暂无分享,去创建一个
[1] B. Zhu,et al. IBD-Associated Atg16L1T300A Polymorphism Regulates Commensal Microbiota of the Intestine , 2022, Frontiers in Immunology.
[2] G. Wang,et al. Bifidobacterium bifidum Shows More Diversified Ways of Relieving Non-Alcoholic Fatty Liver Compared with Bifidobacterium adolescentis , 2021, Biomedicines.
[3] B. Strukelj,et al. The Influence of Probiotics on the Firmicutes/Bacteroidetes Ratio in the Treatment of Obesity and Inflammatory Bowel disease , 2020, Microorganisms.
[4] D. Loeuille,et al. Paradoxical gastrointestinal effects of interleukin-17 blockers , 2020, Annals of the Rheumatic Diseases.
[5] P. Kolsteren,et al. A prebiotic-enhanced lipid-based nutrient supplement (LNSp) increases Bifidobacterium relative abundance and enhances short-chain fatty acid production in simulated colonic microbiota from undernourished infants. , 2020, FEMS microbiology ecology.
[6] D. Koestler,et al. Coexpression of FOXP3 and a Helios isoform enhances the effectiveness of human engineered regulatory T cells. , 2020, Blood advances.
[7] G. Folkerts,et al. Microbiota‐dependent and ‐independent effects of dietary fibre on human health , 2020, British journal of pharmacology.
[8] W. Garrett,et al. Metabolite-Sensing Receptor Ffar2 Regulates Colonic Group 3 Innate Lymphoid Cells and Gut Immunity. , 2019, Immunity.
[9] G. Reid,et al. Probiotics and prebiotics in intestinal health and disease: from biology to the clinic , 2019, Nature Reviews Gastroenterology & Hepatology.
[10] Y. Cong,et al. Gut microbiota metabolite regulation of host defenses at mucosal surfaces: implication in precision medicine , 2019, Precision clinical medicine.
[11] L. Jespersen,et al. Potential of Pectins to Beneficially Modulate the Gut Microbiota Depends on Their Structural Properties , 2019, Front. Microbiol..
[12] Phoebe Lin,et al. Disruption of Intestinal Homeostasis and Intestinal Microbiota During Experimental Autoimmune Uveitis , 2019, Investigative ophthalmology & visual science.
[13] I. Gery,et al. Tolerance Induction in Relation to the Eye , 2018, Front. Immunol..
[14] D. Nguyen,et al. Clinical Remission of Sight-Threatening Non-Infectious Uveitis Is Characterized by an Upregulation of Peripheral T-Regulatory Cell Polarized Towards T-bet and TIGIT , 2018, Front. Immunol..
[15] Shan C. Lin,et al. Epidemiology of uveitis in a US population-based study , 2018, Journal of Ophthalmic Inflammation and Infection.
[16] Katrina P. Nguyen,et al. Why do mice over-eat high fat diets? How high fat diet alters the regulation of daily caloric intake in mice , 2018, Obesity.
[17] H. T. Park,et al. Akkermansia muciniphila-derived extracellular vesicles influence gut permeability through the regulation of tight junctions , 2018, Experimental & Molecular Medicine.
[18] J. Cryan,et al. Post-weaning social isolation of rats leads to long-term disruption of the gut microbiota-immune-brain axis , 2018, Brain, Behavior, and Immunity.
[19] Sumio Watanabe,et al. Maternal High Fiber Diet during Pregnancy and Lactation Influences Regulatory T Cell Differentiation in Offspring in Mice , 2017, The Journal of Immunology.
[20] Phoebe Lin,et al. Short chain fatty acids ameliorate immune-mediated uveitis partially by altering migration of lymphocytes from the intestine , 2017, Scientific Reports.
[21] M. El-Salhy,et al. Effect of diet and individual dietary guidance on gastrointestinal endocrine cells in patients with irritable bowel syndrome (Review) , 2017, International journal of molecular medicine.
[22] T. Schulz,et al. Short-chain fatty acids and inulin, but not guar gum, prevent diet-induced obesity and insulin resistance through differential mechanisms in mice , 2017, Scientific Reports.
[23] D. Artis,et al. Regulation of inflammation by microbiota interactions with the host , 2017, Nature Immunology.
[24] Huijue Jia,et al. Gut microbiome and serum metabolome alterations in obesity and after weight-loss intervention , 2017, Nature Medicine.
[25] James L. Richards,et al. Gut microbial metabolites limit the frequency of autoimmune T cells and protect against type 1 diabetes , 2017, Nature Immunology.
[26] Aleksandra A. Kolodziejczyk,et al. Dysbiosis and the immune system , 2017, Nature Reviews Immunology.
[27] A. Chiba,et al. The dual role of short fatty acid chains in the pathogenesis of autoimmune disease models , 2017, PloS one.
[28] Meng Hong,et al. Imbalance of Th17/Treg cells in pathogenesis of patients with human leukocyte antigen B27 associated acute anterior uveitis , 2017, Scientific Reports.
[29] M. Skup,et al. Prevalence of Noninfectious Uveitis in the United States: A Claims-Based Analysis. , 2016, JAMA ophthalmology.
[30] Chang H. Kim,et al. Gut Microbial Metabolites Fuel Host Antibody Responses. , 2016, Cell host & microbe.
[31] P. Bork,et al. Human gut microbes impact host serum metabolome and insulin sensitivity , 2016, Nature.
[32] Colin J. Brislawn,et al. Gut Microbial Alterations Associated With Protection From Autoimmune Uveitis , 2016, Investigative ophthalmology & visual science.
[33] P. A. Williams,et al. Soluble Fermentable Dietary Fibre (Pectin) Decreases Caloric Intake, Adiposity and Lipidaemia in High-Fat Diet-Induced Obese Rats , 2015, PloS one.
[34] E. Wright. DECIPHER: harnessing local sequence context to improve protein multiple sequence alignment , 2015, BMC Bioinformatics.
[35] James Kinross,et al. The gut microbiota and host health: a new clinical frontier , 2015, Gut.
[36] M. Blaut,et al. Effects of dietary inulin on bacterial growth, short-chain fatty acid production and hepatic lipid metabolism in gnotobiotic mice. , 2015, The Journal of nutritional biochemistry.
[37] K. Honda,et al. Microbiota-Dependent Activation of an Autoreactive T Cell Receptor Provokes Autoimmunity in an Immunologically Privileged Site. , 2015, Immunity.
[38] M. Beckstette,et al. Foxp3+ T cells expressing RORγt represent a stable regulatory T-cell effector lineage with enhanced suppressive capacity during intestinal inflammation , 2015, Mucosal Immunology.
[39] Y. Jittayasothorn,et al. Retina-Specific T Regulatory Cells Bring About Resolution and Maintain Remission of Autoimmune Uveitis , 2015, The Journal of Immunology.
[40] T. Laufer,et al. Regulatory T cells occupy an isolated niche in the intestine that is antigen independent. , 2014, Cell reports.
[41] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[42] N. Hellings,et al. High Fat Diet Exacerbates Neuroinflammation in an Animal Model of Multiple Sclerosis by Activation of the Renin Angiotensin System , 2014, Journal of Neuroimmune Pharmacology.
[43] S. Ahrné,et al. High-Fat Diet Reduces the Formation of Butyrate, but Increases Succinate, Inflammation, Liver Fat and Cholesterol in Rats, while Dietary Fibre Counteracts These Effects , 2013, PloS one.
[44] W. Garrett,et al. The Microbial Metabolites, Short-Chain Fatty Acids, Regulate Colonic Treg Cell Homeostasis , 2013, Science.
[45] J. Slavin. Fiber and Prebiotics: Mechanisms and Health Benefits , 2013, Nutrients.
[46] W. Lowe,et al. Short chain fatty acids and their receptors: new metabolic targets. , 2013, Translational research : the journal of laboratory and clinical medicine.
[47] H. Smidt,et al. A diet high in resistant starch modulates microbiota composition, SCFA concentrations, and gene expression in pig intestine. , 2013, The Journal of nutrition.
[48] R. Lau,et al. Dietary fibre, whole grains, and risk of colorectal cancer: systematic review and dose-response meta-analysis of prospective studies , 2011, BMJ : British Medical Journal.
[49] Reiko Horai,et al. Cytokines in autoimmune uveitis. , 2011, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[50] Yikyung Park,et al. Dietary fiber intake and mortality in the NIH-AARP diet and health study. , 2011, Archives of internal medicine.
[51] Rick L. Stevens,et al. The Earth Microbiome Project: Meeting report of the “1st EMP meeting on sample selection and acquisition” at Argonne National Laboratory October 6th 2010. , 2010, Standards in genomic sciences.
[52] G. Fahey,et al. Dietary cellulose, fructooligosaccharides, and pectin modify fecal protein catabolites and microbial populations in adult cats. , 2010, Journal of animal science.
[53] S. Mazmanian,et al. Inducible Foxp3+ regulatory T-cell development by a commensal bacterium of the intestinal microbiota , 2010, Proceedings of the National Academy of Sciences.
[54] R. Caspi,et al. Th1 and Th17 cells , 2010, Annals of the New York Academy of Sciences.
[55] Ying Hu,et al. Effect of high amylose maize starches on colonic fermentation and apoptotic response to DNA-damage in the colon of rats , 2009, Nutrition & metabolism.
[56] K. B. Bach Knudsen,et al. Influence of dietary fiber on luminal environment and morphology in the small and large intestine of sows. , 2008, Journal of animal science.
[57] A. Kijlstra,et al. Diminished frequency and function of CD4+CD25high regulatory T cells associated with active uveitis in Vogt-Koyanagi-Harada syndrome. , 2008, Investigative ophthalmology & visual science.
[58] N. Kamatani,et al. Decreased percentages of regulatory T cells in peripheral blood of patients with Behcet’s disease before ocular attack: a possible predictive marker of ocular attack , 2008, Modern rheumatology.
[59] Y. Fujiyama,et al. Effects of the Soluble Fibre Pectin on Intestinal Cell Proliferation, Fecal Short Chain Fatty Acid Production and Microbial Population , 2003, Digestion.
[60] G. Gibson,et al. Comparison of the in vitro bifidogenic properties of pectins and pectic‐oligosaccharides , 2002, Journal of applied microbiology.
[61] R. Goodlad,et al. Dietary fibre and intestinal microflora: effects on intestinal morphometry and crypt branching , 1998, Gut.
[62] Y. Je,et al. Dietary fibre intake and mortality from cardiovascular disease and all cancers: A meta-analysis of prospective cohort studies. , 2016, Archives of cardiovascular diseases.
[63] L. Mosoni,et al. Dietary pectin stimulates protein metabolism in the digestive tract. , 2007, Nutrition.