The Role of Morphine-Induced Impairment of Intestinal Epithelial Antibacterial Activity in Dysbiosis and its Impact on the Microbiota-Gut-Brain Axis
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Nicole R. Jimenez | J. Poklis | H. Akbarali | Minho Kang | Qingguo Xu | E. Koseli | K. Muchhala | W. Dewey | Jennifer Fettweis | Karan H. Muchhala | Jennifer M. Fettweis
[1] H. Jäck,et al. The intestine: A highly dynamic microenvironment for IgA plasma cells , 2023, Frontiers in Immunology.
[2] X. Chen,et al. Nociceptor neurons direct goblet cells via a CGRP-RAMP1 axis to drive mucus production and gut barrier protection , 2022, Cell.
[3] W. Dewey,et al. Chronic Morphine Induces IL-18 in Ileum Myenteric Plexus Neurons Through Mu-opioid Receptor Activation in Cholinergic and VIPergic Neurons , 2022, Journal of Neuroimmune Pharmacology.
[4] Hao-tian Zhao,et al. Fecal Microbiota Transplantation Protects the Intestinal Mucosal Barrier by Reconstructing the Gut Microbiota in a Murine Model of Sepsis , 2021, Frontiers in Cellular and Infection Microbiology.
[5] W. Dewey,et al. The Guts of the Opioid Crisis. , 2021, Physiology.
[6] D. D. Kiraly,et al. Alterations in microbiome composition and metabolic byproducts drive behavioral and transcriptional responses to morphine , 2021, Neuropsychopharmacology.
[7] S. Bischoff,et al. Prebiotic Inulin and Sodium Butyrate Attenuate Obesity-Induced Intestinal Barrier Dysfunction by Induction of Antimicrobial Peptides , 2021, Frontiers in Immunology.
[8] Kelly C. Weldon,et al. Peripheral Neuronal Activation Shapes the Microbiome and Alters Gut Physiology , 2021, bioRxiv.
[9] Francesco Valeri,et al. How biological sex of the host shapes its gut microbiota , 2021, Frontiers in Neuroendocrinology.
[10] N. Kamada,et al. The Butyrate-Producing Bacterium Clostridium butyricum Suppresses Clostridioides difficile Infection via Neutrophil- and Antimicrobial Cytokine–Dependent but GPR43/109a-Independent Mechanisms , 2021, The Journal of Immunology.
[11] S. Hazen,et al. Chronic opioid use modulates human enteric microbiota and intestinal barrier integrity , 2021, Gut microbes.
[12] W. Dewey,et al. Role of β-arrestin-2 in short- and long-term opioid tolerance in the dorsal root ganglia , 2020, bioRxiv.
[13] B. Foxman,et al. Opioid agonist and antagonist use and the gut microbiota: associations among people in addiction treatment , 2020, Scientific Reports.
[14] S. Kulkarni,et al. Neuro-innate immune interactions in gut mucosal immunity. , 2020, Current opinion in immunology.
[15] S. Mazmanian,et al. The gut microbiota–brain axis in behaviour and brain disorders , 2020, Nature Reviews Microbiology.
[16] Amanda J. Pickard,et al. Author Correction: Microbiota modulate sympathetic neurons via a gut–brain circuit , 2020, Nature.
[17] F. Magro,et al. Microbiota-derived butyrate regulates intestinal inflammation: Focus on inflammatory bowel disease. , 2020, Pharmacological research.
[18] D. Busch,et al. Gut microbiota derived propionate regulates the expression of Reg3 mucosal lectins and ameliorates experimental colitis in mice. , 2020, Journal of Crohn's & colitis.
[19] P. Hahn,et al. Feeding-dependent VIP neuron-ILC3 circuit regulates the intestinal barrier , 2020, Nature.
[20] Y. Kluger,et al. Enteric Nervous System-Derived IL-18 Orchestrates Mucosal Barrier Immunity , 2020, Cell.
[21] Matthew E. Ritchie,et al. The neuropeptide VIP confers anticipatory mucosal immunity by regulating ILC3 activity , 2019, Nature Immunology.
[22] M. Starnbach,et al. Gut-Innervating Nociceptor Neurons Regulate Peyer’s Patch Microfold Cells and SFB Levels to Mediate Salmonella Host Defense , 2019, Cell.
[23] A. Christopoulos,et al. Mu and Delta Opioid Receptors Are Coexpressed and Functionally Interact in the Enteric Nervous System of the Mouse Colon , 2019, Cellular and molecular gastroenterology and hepatology.
[24] W. Dewey,et al. Experimental Colitis Enhances the Rate of Antinociceptive Tolerance to Morphine via Peripheral Opioid Receptors , 2019, The Journal of Pharmacology and Experimental Therapeutics.
[25] Sabita Roy,et al. Morphine tolerance is attenuated in germfree mice and reversed by probiotics, implicating the role of gut microbiome , 2019, Proceedings of the National Academy of Sciences.
[26] R. Seeley,et al. Reg3 Proteins as Gut Hormones? , 2019, Endocrinology.
[27] D. D. Kiraly,et al. A potential role for the gut microbiome in substance use disorders , 2019, Psychopharmacology.
[28] D. Averitt,et al. Neuronal and glial factors contributing to sex differences in opioid modulation of pain , 2018, Neuropsychopharmacology.
[29] Josephine R. Chandler,et al. Bacterial Quorum Sensing and Microbial Community Interactions , 2018, mBio.
[30] S. Green,et al. Gut microbiota varies by opioid use, circulating leptin and oxytocin in African American men with diabetes and high burden of chronic disease , 2018, PloS one.
[31] W. Dewey,et al. Tolerance to Morphine-Induced Inhibition of TTX-R Sodium Channels in Dorsal Root Ganglia Neurons Is Modulated by Gut-Derived Mediators , 2018, iScience.
[32] Sabita Roy,et al. Morphine induces changes in the gut microbiome and metabolome in a morphine dependence model , 2018, Scientific Reports.
[33] Bruno Bonaz,et al. The Vagus Nerve at the Interface of the Microbiota-Gut-Brain Axis , 2018, Front. Neurosci..
[34] Y. Cong,et al. GPR43 mediates microbiota metabolite SCFA regulation of antimicrobial peptide expression in intestinal epithelial cells via activation of mTOR and STAT3 , 2017, Mucosal Immunology.
[35] Kunhua Wang,et al. Bacterial Diversity of Intestinal Microbiota in Patients with Substance Use Disorders Revealed by 16S rRNA Gene Deep Sequencing , 2017, Scientific Reports.
[36] Kunhua Wang,et al. Bacterial Diversity of Intestinal Microbiota in Patients with Substance Use Disorders Revealed by 16S rRNA Gene Deep Sequencing , 2017, Scientific Reports.
[37] G. Pasternak. Faculty Opinions recommendation of Loss of μ opioid receptor signaling in nociceptors, but not microglia, abrogates morphine tolerance without disrupting analgesia. , 2017 .
[38] W. Dewey,et al. The effect of gut microbiome on tolerance to morphine mediated antinociception in mice , 2017, Scientific Reports.
[39] S. N. Udden,et al. The Ex Vivo Colon Organ Culture and Its Use in Antimicrobial Host Defense Studies. , 2017, Journal of visualized experiments : JoVE.
[40] Masahiko Watanabe,et al. Neural FFA3 activation inversely regulates anion secretion evoked by nicotinic ACh receptor activation in rat proximal colon , 2016, The Journal of physiology.
[41] J. Grider,et al. Enhanced Sensitivity of α3β4 Nicotinic Receptors in Enteric Neurons after Long-Term Morphine: Implication for Opioid-Induced Constipation , 2016, The Journal of Pharmacology and Experimental Therapeutics.
[42] Yizhen Wang,et al. Butyrate upregulates endogenous host defense peptides to enhance disease resistance in piglets via histone deacetylase inhibition , 2016, Scientific Reports.
[43] Morris A. Swertz,et al. Population-based metagenomics analysis reveals markers for gut microbiome composition and diversity , 2016, Science.
[44] D. Brenner,et al. Intestinal REG3 Lectins Protect against Alcoholic Steatohepatitis by Reducing Mucosa-Associated Microbiota and Preventing Bacterial Translocation. , 2016, Cell host & microbe.
[45] Sabita Roy,et al. Opioid-induced gut microbial disruption and bile dysregulation leads to gut barrier compromise and sustained systemic inflammation , 2016, Mucosal Immunology.
[46] Sabita Roy,et al. Opioid Exacerbation of Gram-positive sepsis, induced by Gut Microbial Modulation, is Rescued by IL-17A Neutralization , 2015, Scientific Reports.
[47] M. Colonna,et al. Innate lymphoid cells: A new paradigm in immunology , 2015, Science.
[48] T. Weir,et al. Crosstalk between Microbiota-Derived Short-Chain Fatty Acids and Intestinal Epithelial HIF Augments Tissue Barrier Function. , 2015, Cell host & microbe.
[49] T. Schwartz,et al. Expression of the short chain fatty acid receptor GPR41/FFAR3 in autonomic and somatic sensory ganglia , 2015, Neuroscience.
[50] A. Khoruts,et al. Development of fecal microbiota transplantation suitable for mainstream medicine. , 2015, Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association.
[51] L. Brandt,et al. Is fecal microbiota transplantation (FMT) an effective treatment for patients with functional gastrointestinal disorders (FGID)? , 2015, Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society.
[52] P. Holzer. Pharmacology of Opioids and their Effects on Gastrointestinal Function , 2014 .
[53] W. Dewey,et al. Morphine dependence in single enteric neurons from the mouse colon requires deletion of β‐arrestin2 , 2014, Physiological reports.
[54] Sepideh Nabipour,et al. Burden and Nutritional Deficiencies in Opiate Addiction- Systematic Review Article , 2014, Iranian journal of public health.
[55] M. Morris,et al. Role of monocarboxylate transporters in drug delivery to the brain. , 2014, Current pharmaceutical design.
[56] J. Dekker,et al. REG3γ-deficient mice have altered mucus distribution and increased mucosal inflammatory responses to the microbiota and enteric pathogens in the ileum , 2013, Mucosal Immunology.
[57] N. Volkow,et al. Whole-body pharmacokinetics of HDAC inhibitor drugs, butyric acid, valproic acid and 4-phenylbutyric acid measured with carbon-11 labeled analogs by PET. , 2013, Nuclear medicine and biology.
[58] T. Schwartz,et al. GPR41/FFAR3 and GPR43/FFAR2 as cosensors for short-chain fatty acids in enteroendocrine cells vs FFAR3 in enteric neurons and FFAR2 in enteric leukocytes. , 2013, Endocrinology.
[59] W. Lowe,et al. Short chain fatty acids and their receptors: new metabolic targets. , 2013, Translational research : the journal of laboratory and clinical medicine.
[60] Sabita Roy,et al. Morphine Induces Bacterial Translocation in Mice by Compromising Intestinal Barrier Function in a TLR-Dependent Manner , 2013, PloS one.
[61] G. Yeretssian,et al. Intestinal antimicrobial peptides during homeostasis, infection, and disease , 2012, Front. Immun..
[62] J. Grider,et al. Morphine Decreases Enteric Neuron Excitability via Inhibition of Sodium Channels , 2012, PloS one.
[63] W. Hardt,et al. The Bactericidal Activity of the C-type Lectin RegIIIβ against Gram-negative Bacteria involves Binding to Lipid A* , 2012, The Journal of Biological Chemistry.
[64] M. Chamaillard,et al. Intestinally Secreted C-Type Lectin Reg3b Attenuates Salmonellosis but Not Listeriosis in Mice , 2012, Infection and Immunity.
[65] R. Ley,et al. The Antibacterial Lectin RegIIIγ Promotes the Spatial Segregation of Microbiota and Host in the Intestine , 2011, Science.
[66] N. Salzman,et al. Paneth cells, antimicrobial peptides and maintenance of intestinal homeostasis , 2011, Nature Reviews Microbiology.
[67] S. Akira,et al. Toll-like receptor 2 is critical for induction of Reg3β expression and intestinal clearance of Yersinia pseudotuberculosis , 2009, Gut.
[68] K. McCoy,et al. Use of axenic animals in studying the adaptation of mammals to their commensal intestinal microbiota. , 2007, Seminars in immunology.
[69] H. Pan,et al. Resistance to morphine analgesic tolerance in rats with deleted transient receptor potential vanilloid type 1-expressing sensory neurons , 2007, Neuroscience.
[70] L. Hooper,et al. Symbiotic Bacteria Direct Expression of an Intestinal Bactericidal Lectin , 2006, Science.
[71] D. Sack,et al. Improved outcome in shigellosis associated with butyrate induction of an endogenous peptide antibiotic. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[72] K. Daly,et al. Microarray analysis of butyrate regulated genes in colonic epithelial cells. , 2006, DNA and cell biology.
[73] J. Davie. Inhibition of histone deacetylase activity by butyrate. , 2003, The Journal of nutrition.
[74] T. Eisenstein,et al. Morphine Inhibits Mucosal Antibody Responses and TGF-β mRNA in Gut-Associated Lymphoid Tissue Following Oral Cholera Toxin in Mice1 , 2001, The Journal of Immunology.
[75] F J Santolaria-Fernández,et al. Nutritional assessment of drug addicts. , 1995, Drug and alcohol dependence.
[76] S. Žeger,et al. Diet and opiate addiction: a quantitative assessment of the diet of non-institutionalized opiate addicts. , 1989, British journal of addiction.
[77] W. Roediger. Utilization of nutrients by isolated epithelial cells of the rat colon. , 1982, Gastroenterology.