Roles of microRNAs in inflammatory bowel disease
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A. Koyanagi | Lee Smith | L. Jacob | Seung Won Lee | D. Yon | A. Kronbichler | S. Terrazzino | S. Cargnin | J. Shin | Jae Seok Kim | Keumwha Lee | Min Seo Kim | Han Li | K. Tizaoui | Sung Hwi Hong | W. Karnsakul | HyunTaek Jung | P. Wasuwanich
[1] G. Kaplan,et al. The four epidemiological stages in the global evolution of inflammatory bowel disease , 2020, Nature Reviews Gastroenterology & Hepatology.
[2] H. Weighardt,et al. Dietary AhR Ligands Regulate AhRR Expression in Intestinal Immune Cells and Intestinal Microbiota Composition , 2020, International journal of molecular sciences.
[3] L. Pernomian,et al. The Aryl Hydrocarbon Receptor (AHR) as a Potential Target for the Control of Intestinal Inflammation: Insights from an Immune and Bacteria Sensor Receptor , 2020, Clinical Reviews in Allergy & Immunology.
[4] Ye Sun,et al. Innate Lymphoid Cells: Regulators of Gut Barrier Function and Immune Homeostasis , 2019, Journal of immunology research.
[5] Q. Guan. A Comprehensive Review and Update on the Pathogenesis of Inflammatory Bowel Disease , 2019, Journal of immunology research.
[6] E. Ballestar,et al. miRNAs as Therapeutic Targets in Inflammatory Disease. , 2019, Trends in pharmacological sciences.
[7] C. Lengner,et al. MicroRNA-31 Reduces Inflammatory Signaling and Promotes Regeneration in Colon Epithelium, and Delivery of Mimics in Microspheres Reduces Colitis in Mice. , 2019, Gastroenterology.
[8] Y. Jeen,et al. Genetic Studies of Inflammatory Bowel Disease-Focusing on Asian Patients , 2019, Cells.
[9] Namrata Iyer,et al. Commensals Suppress Intestinal Epithelial Cell Retinoic Acid Synthesis to Regulate Interleukin‐22 Activity and Prevent Microbial Dysbiosis , 2018, Immunity.
[10] L. Yu. Microbiota dysbiosis and barrier dysfunction in inflammatory bowel disease and colorectal cancers: exploring a common ground hypothesis , 2018, Journal of Biomedical Science.
[11] J. Rawls,et al. Intestinal Serum amyloid A suppresses systemic neutrophil activation and bactericidal activity in response to microbiota colonization , 2018, bioRxiv.
[12] M. Sato,et al. Impact of Retinoic Acid on Immune Cells and Inflammatory Diseases , 2018, Mediators of inflammation.
[13] Y. Doki,et al. The Supercarbonate Apatite-MicroRNA Complex Inhibits Dextran Sodium Sulfate-Induced Colitis , 2018, Molecular therapy. Nucleic acids.
[14] C. Peng,et al. Overview of MicroRNA Biogenesis, Mechanisms of Actions, and Circulation , 2018, Front. Endocrinol..
[15] R. Ye,et al. Elevated Expression of Serum Amyloid A 3 Protects Colon Epithelium Against Acute Injury Through TLR2-Dependent Induction of Neutrophil IL-22 Expression in a Mouse Model of Colitis , 2018, Front. Immunol..
[16] Luyi Wu,et al. The Role of Autophagy and Related MicroRNAs in Inflammatory Bowel Disease , 2018, Gastroenterology research and practice.
[17] A. Macpherson,et al. IgA Function in Relation to the Intestinal Microbiota. , 2018, Annual review of immunology.
[18] K. Maloy,et al. Intestinal Epithelial Cell Autophagy Is Required to Protect against TNF-Induced Apoptosis during Chronic Colitis in Mice. , 2018, Cell host & microbe.
[19] D. Iliopoulos,et al. Functional role and therapeutic targeting of microRNAs in inflammatory bowel disease. , 2018, American journal of physiology. Gastrointestinal and liver physiology.
[20] Nima Hamidi,et al. Worldwide incidence and prevalence of inflammatory bowel disease in the 21st century: a systematic review of population-based studies , 2017, The Lancet.
[21] H. Fan,et al. miR‐200b‐containing microvesicles attenuate experimental colitis associated intestinal fibrosis by inhibiting epithelial‐mesenchymal transition , 2017, Journal of gastroenterology and hepatology.
[22] Suping Chen,et al. MicroRNA-141 Is Involved in Ulcerative Colitis Pathogenesis via Aiming at CXCL5. , 2017, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[23] Zhaojian Liu,et al. miR-130a upregulates mTOR pathway by targeting TSC1 and is transactivated by NF-κB in high-grade serous ovarian carcinoma , 2017, Cell Death and Differentiation.
[24] Hailiang Huang,et al. Fine-mapping inflammatory bowel disease loci to single variant resolution , 2017, Nature.
[25] Xinke Zhou,et al. MicroRNA-122a Regulates Zonulin by Targeting EGFR in Intestinal Epithelial Dysfunction , 2017, Cellular Physiology and Biochemistry.
[26] L. Liu,et al. MicroRNA-20a-mediated loss of autophagy contributes to breast tumorigenesis by promoting genomic damage and instability , 2017, Oncogene.
[27] M. Mack,et al. Myeloid-derived miR-223 regulates intestinal inflammation via repression of the NLRP3 inflammasome , 2017, The Journal of experimental medicine.
[28] Bo Xiao,et al. Serum miRNA signature diagnoses and discriminates murine colitis subtypes and predicts ulcerative colitis in humans , 2017, Scientific Reports.
[29] V. Andersen,et al. Expression and Localization of miR-21 and miR-126 in Mucosal Tissue from Patients with Inflammatory Bowel Disease , 2017, Inflammatory bowel diseases.
[30] Y. Miao,et al. MiR-106b and miR-93 regulate cell progression by suppression of PTEN via PI3K/Akt pathway in breast cancer , 2017, Cell Death & Disease.
[31] Brianna P. Thomas,et al. The Protective Role of Type I Interferons in the Gastrointestinal Tract , 2017, Front. Immunol..
[32] Zaoyuan Kuang,et al. Baicalin Protects against TNF-α-Induced Injury by Down-Regulating miR-191a That Targets the Tight Junction Protein ZO-1 in IEC-6 Cells. , 2017, Biological & pharmaceutical bulletin.
[33] Minhu Chen,et al. Upregulation of miR-665 promotes apoptosis and colitis in inflammatory bowel disease by repressing the endoplasmic reticulum stress components XBP1 and ORMDL3 , 2017, Cell Death & Disease.
[34] Yingwei Chen,et al. miR-200b inhibits TNF-α-induced IL-8 secretion and tight junction disruption of intestinal epithelial cells in vitro. , 2017, American journal of physiology. Gastrointestinal and liver physiology.
[35] M. Voskuil,et al. The genetic background of inflammatory bowel disease: from correlation to causality , 2017, The Journal of pathology.
[36] K. Okazaki,et al. Downregulation of MicroRNA-21 in Colonic CD3+ T Cells in UC Remission , 2016, Inflammatory bowel diseases.
[37] J. Zhang,et al. The signaling axis of microRNA-31/interleukin-25 regulates Th1/Th17-mediated inflammation response in colitis , 2016, Mucosal Immunology.
[38] Huyen Trang Ha Thi,et al. MicroRNA‐132 and microRNA‐223 control positive feedback circuit by regulating FOXO3a in inflammatory bowel disease , 2016, Journal of gastroenterology and hepatology.
[39] S. Srinivasan,et al. Edible ginger-derived nanoparticles: A novel therapeutic approach for the prevention and treatment of inflammatory bowel disease and colitis-associated cancer. , 2016, Biomaterials.
[40] J. Schaefer. MicroRNAs: how many in inflammatory bowel disease? , 2016, Current opinion in gastroenterology.
[41] David C. Wilson,et al. Genome-wide association study implicates immune activation of multiple integrin genes in inflammatory bowel disease , 2016, Nature Genetics.
[42] Ming Li,et al. MicroRNA-124 Promotes Intestinal Inflammation by Targeting Aryl Hydrocarbon Receptor in Crohn's Disease. , 2016, Journal of Crohn's & colitis.
[43] W. Garrett,et al. Gut microbiota, metabolites and host immunity , 2016, Nature Reviews Immunology.
[44] Søren Brunak,et al. Analysis of five chronic inflammatory diseases identifies 27 new associations and highlights disease-specific patterns at shared loci , 2016, Nature Genetics.
[45] M. Gorospe,et al. H19 Long Noncoding RNA Regulates Intestinal Epithelial Barrier Function via MicroRNA 675 by Interacting with RNA-Binding Protein HuR , 2016, Molecular and Cellular Biology.
[46] L. Stronati,et al. NOD2 Is Regulated By Mir-320 in Physiological Conditions but this Control Is Altered in Inflamed Tissues of Patients with Inflammatory Bowel Disease , 2016, Inflammatory bowel diseases.
[47] E. Elinav,et al. Epithelial IL-18 Equilibrium Controls Barrier Function in Colitis , 2015, Cell.
[48] J. Kjeldsen,et al. Circulating microRNAs as biomarkers of adult Crohn’s disease , 2015, European journal of gastroenterology & hepatology.
[49] A. Keshavarzian,et al. The Role of miR-212 and iNOS in Alcohol-Induced Intestinal Barrier Dysfunction and Steatohepatitis. , 2015, Alcoholism, clinical and experimental research.
[50] F. Powrie,et al. Granulocyte Macrophage Colony-Stimulating Factor-Activated Eosinophils Promote Interleukin-23 Driven Chronic Colitis , 2015, Immunity.
[51] Judy H. Cho,et al. Association analyses identify 38 susceptibility loci for inflammatory bowel disease and highlight shared genetic risk across populations , 2015, Nature Genetics.
[52] L. Samelson,et al. miR-155 Controls Lymphoproliferation in LAT Mutant Mice by Restraining T-Cell Apoptosis via SHIP-1/mTOR and PAK1/FOXO3/BIM Pathways , 2015, PloS one.
[53] Jian Cheng,et al. MicroRNA‐21 regulates intestinal epithelial tight junction permeability , 2015, Cell biochemistry and function.
[54] X. Chen,et al. miR-19b downregulates intestinal SOCS3 to reduce intestinal inflammation in Crohn’s disease , 2015, Scientific Reports.
[55] C. Hunter,et al. IL-6 as a keystone cytokine in health and disease , 2015, Nature Immunology.
[56] J. Greenbaum,et al. IL-10 producing intestinal macrophages prevent excessive anti-bacterial innate immunity by limiting IL-23 synthesis , 2015, Nature Communications.
[57] O. Nielsen,et al. ATG16L1: A multifunctional susceptibility factor in Crohn disease , 2015, Autophagy.
[58] P. Thompson,et al. Loss of miR-223 and JNK Signaling Contribute to Elevated Stathmin in Malignant Pleural Mesothelioma , 2015, Molecular Cancer Research.
[59] Joana A. Vidigal,et al. The biological functions of miRNAs: lessons from in vivo studies. , 2015, Trends in cell biology.
[60] I. Nalbantoglu,et al. Differential expression of miR-31 between inflammatory bowel disease and microscopic colitis. , 2015, MicroRNA.
[61] D. Graham,et al. MicroRNA signatures differentiate Crohn’s disease from ulcerative colitis , 2015, BMC Immunology.
[62] Jie-shou Li,et al. Altered microRNA expression in inflamed and non‐inflamed terminal ileal mucosa of adult patients with active Crohn's disease , 2015, Journal of gastroenterology and hepatology.
[63] Jie Du,et al. MicroRNA-346 Mediates Tumor Necrosis Factor &agr;–Induced Downregulation of Gut Epithelial Vitamin D Receptor in Inflammatory Bowel Diseases , 2014, Inflammatory bowel diseases.
[64] I. Pinchuk,et al. miR-10a inhibits dendritic cell activation and Th1/Th17 cell immune responses in IBD , 2014, Gut.
[65] W. Ouyang,et al. Homeostatic IL-23 receptor signaling limits Th17 response through IL-22–mediated containment of commensal microbiota , 2014, Proceedings of the National Academy of Sciences.
[66] R. Baldassano,et al. Rectal microRNAs are perturbed in pediatric inflammatory bowel disease of the colon. , 2014, Journal of Crohn's & colitis.
[67] G. Friedlander,et al. Macrophage-restricted interleukin-10 receptor deficiency, but not IL-10 deficiency, causes severe spontaneous colitis. , 2014, Immunity.
[68] Weixu Chen,et al. Implication of miRNAs for inflammatory bowel disease treatment: Systematic review. , 2014, World journal of gastrointestinal pathophysiology.
[69] Noah C. Welker,et al. Novel specific microRNA biomarkers in idiopathic inflammatory bowel disease unrelated to disease activity , 2014, Modern Pathology.
[70] F. Cominelli,et al. Functional defects in NOD2 signaling in experimental and human Crohn disease , 2014, Gut microbes.
[71] Li Yang,et al. MiR‐874 promotes intestinal barrier dysfunction through targeting AQP3 following intestinal ischemic injury , 2014, FEBS letters.
[72] F. Seibold,et al. Crohn's disease-associated adherent invasive Escherichia coli modulate levels of microRNAs in intestinal epithelial cells to reduce autophagy. , 2014, Gastroenterology.
[73] J. Messer,et al. Human autophagy gene ATG16L1 is post-transcriptionally regulated by MIR142-3p , 2014, Autophagy.
[74] Z. Zhai,et al. NOD2 Expression is Regulated by microRNAs in Colonic Epithelial HCT116 Cells , 2014, Inflammatory bowel diseases.
[75] Junfeng Zhang,et al. miR-141 Regulates colonic leukocytic trafficking by targeting CXCL12β during murine colitis and human Crohn's disease , 2013, Gut.
[76] Y. Liu,et al. miR-122 targets NOD2 to decrease intestinal epithelial cell injury in Crohn's disease. , 2013, Biochemical and biophysical research communications.
[77] O. Nielsen,et al. miR-20b, miR-98, miR-125b-1*, and let-7e* as new potential diagnostic biomarkers in ulcerative colitis. , 2013, World journal of gastroenterology.
[78] Yongzhi Yang,et al. MicroRNA-21 Knockout Improve the Survival Rate in DSS Induced Fatal Colitis through Protecting against Inflammation and Tissue Injury , 2013, PloS one.
[79] Y. Kohgo,et al. MicroRNA‐146b improves intestinal injury in mouse colitis by activating nuclear factor‐κB and improving epithelial barrier function , 2013, The journal of gene medicine.
[80] Yongzhi Yang,et al. Overexpression of miR-21 in patients with ulcerative colitis impairs intestinal epithelial barrier function through targeting the Rho GTPase RhoB. , 2013, Biochemical and biophysical research communications.
[81] T. Dassopoulos,et al. Quality Indicators for Inflammatory Bowel Disease: Development of Process and Outcome Measures , 2013, Inflammatory bowel diseases.
[82] Yu Zhou,et al. Up-Regulation of microRNA-126 May Contribute to Pathogenesis of Ulcerative Colitis via Regulating NF-kappaB Inhibitor IκBα , 2012, PloS one.
[83] F. Powrie,et al. Dysregulated Hematopoietic Stem and Progenitor Cell Activity Promotes Interleukin-23-Driven Chronic Intestinal Inflammation , 2012, Immunity.
[84] M. Gazouli,et al. Circulating MicroRNA in inflammatory bowel disease. , 2012, Journal of Crohn's & colitis.
[85] R. Knight,et al. Diversity, stability and resilience of the human gut microbiota , 2012, Nature.
[86] Burkhard Becher,et al. IL-1β mediates chronic intestinal inflammation by promoting the accumulation of IL-17A secreting innate lymphoid cells and CD4+ Th17 cells , 2012, The Journal of experimental medicine.
[87] W. Chan,et al. Quantitative proteomics reveals that miR-155 regulates the PI3K-AKT pathway in diffuse large B-cell lymphoma. , 2012, The American journal of pathology.
[88] M. Bringer,et al. Defects in autophagy favour adherent‐invasive Escherichia coli persistence within macrophages leading to increased pro‐inflammatory response , 2012, Cellular microbiology.
[89] G. Illei,et al. The Majority of MicroRNAs Detectable in Serum and Saliva Is Concentrated in Exosomes , 2012, PloS one.
[90] Keith W. Jones,et al. Genome-Wide Maps of Circulating miRNA Biomarkers for Ulcerative Colitis , 2012, PloS one.
[91] R. Kiesslich,et al. Antibodies against tumor necrosis factor (TNF) induce T-cell apoptosis in patients with inflammatory bowel diseases via TNF receptor 2 and intestinal CD14⁺ macrophages. , 2011, Gastroenterology.
[92] K. Zen,et al. Role of miR‐150‐targeting c‐Myb in colonic epithelial disruption during dextran sulphate sodium‐induced murine experimental colitis and human ulcerative colitis , 2011, The Journal of pathology.
[93] M. Leonard,et al. Circulating MicroRNA Is a Biomarker of Pediatric Crohn Disease , 2011, Journal of pediatric gastroenterology and nutrition.
[94] Annick Harel-Bellan,et al. A synonymous variant in IRGM alters a binding site for miR-196 and causes deregulation of IRGM-dependent xenophagy in Crohn's disease , 2011, Nature Genetics.
[95] K. Vickers,et al. MicroRNAs are Transported in Plasma and Delivered to Recipient Cells by High-Density Lipoproteins , 2011, Nature Cell Biology.
[96] S. Brant,et al. Peripheral blood MicroRNAs distinguish active ulcerative colitis and Crohn's disease , 2011, Inflammatory bowel diseases.
[97] E. Ogier-Denis,et al. Identification of Restricted Subsets of Mature microRNA Abnormally Expressed in Inactive Colonic Mucosa of Patients with Inflammatory Bowel Disease , 2010, PloS one.
[98] S. Brant,et al. Identification of microRNAs associated with ileal and colonic Crohn's disease† , 2010, Inflammatory bowel diseases.
[99] D. Klionsky,et al. Eaten alive: a history of macroautophagy , 2010, Nature Cell Biology.
[100] Y. Naito,et al. Increased expression of microRNA in the inflamed colonic mucosa of patients with active ulcerative colitis , 2010, Journal of gastroenterology and hepatology.
[101] S. Dahan,et al. MicroRNA-7 Modulates CD98 Expression during Intestinal Epithelial Cell Differentiation* , 2009, The Journal of Biological Chemistry.
[102] M. Neurath,et al. STAT3 links IL-22 signaling in intestinal epithelial cells to mucosal wound healing , 2009, The Journal of experimental medicine.
[103] S. Brant,et al. MicroRNAs are differentially expressed in ulcerative colitis and alter expression of macrophage inflammatory peptide-2 alpha. , 2008, Gastroenterology.
[104] M. Spehlmann,et al. Epidemiology of inflammatory bowel disease in a German twin cohort: Results of a nationwide study , 2008, Inflammatory bowel diseases.
[105] U. Turunen,et al. Family and twin studies in inflammatory bowel disease. , 2006, World journal of gastroenterology.
[106] A. Pedram,et al. Mechanism of TNF-{alpha} modulation of Caco-2 intestinal epithelial tight junction barrier: role of myosin light-chain kinase protein expression. , 2005, American journal of physiology. Gastrointestinal and liver physiology.
[107] G. Lichtenstein,et al. Colorectal cancer in inflammatory bowel disease , 2004, Current opinion in gastroenterology.
[108] J. Turner,et al. The intestinal epithelial barrier: a therapeutic target? , 2017, Nature Reviews Gastroenterology &Hepatology.
[109] A. Sapino,et al. The diagnosis of inflammatory bowel disease is often unsupported in clinical practice. , 2015, Digestive and liver disease : official journal of the Italian Society of Gastroenterology and the Italian Association for the Study of the Liver.
[110] Rutao Cui,et al. MIR106B and MIR93 prevent removal of bacteria from epithelial cells by disrupting ATG16L1-mediated autophagy. , 2014, Gastroenterology.