Deoxynivalenol, gut microbiota and immunotoxicity: A potential approach?
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[1] M. Lin,et al. Chronic Exposure to the Fusarium Mycotoxin Deoxynivalenol: Impact on Performance, Immune Organ, and Intestinal Integrity of Slow-Growing Chickens , 2017, Toxins.
[2] Liegang Liu,et al. Review of mechanisms of deoxynivalenol‐induced anorexia: The role of gut microbiota , 2017, Journal of applied toxicology : JAT.
[3] F. Berthiller,et al. Sex Is a Determinant for Deoxynivalenol Metabolism and Elimination in the Mouse , 2017, Toxins.
[4] F. Bäckhed,et al. Evolution, human-microbe interactions, and life history plasticity , 2017, The Lancet.
[5] V. Théodorou,et al. Impact of mycotoxins on the intestine: are mucus and microbiota new targets? , 2017, Journal of toxicology and environmental health. Part B, Critical reviews.
[6] Liegang Liu,et al. Mechanism of deoxynivalenol effects on the reproductive system and fetus malformation: Current status and future challenges. , 2017, Toxicology in vitro : an international journal published in association with BIBRA.
[7] Liegang Liu,et al. Current sights for mechanisms of deoxynivalenol‐induced hepatotoxicity and prospective views for future scientific research: A mini review , 2017, Journal of applied toxicology : JAT.
[8] J. Marie,et al. Transforming growth factor β: a master regulator of the gut microbiota and immune cell interactions , 2017, Clinical & translational immunology.
[9] J. Nicholson,et al. Sex-dependent effects on gut microbiota regulate hepatic carcinogenic outcomes , 2017, Scientific Reports.
[10] U. Dobrindt,et al. The Food Contaminant Deoxynivalenol Exacerbates the Genotoxicity of Gut Microbiota , 2017, mBio.
[11] C. Fæste,et al. Deoxynivalenol Exposure in Norway, Risk Assessments for Different Human Age Groups , 2017, Toxins.
[12] Liegang Liu,et al. Current and prospective sights in mechanism of deoxynivalenol‐induced emesis for future scientific study and clinical treatment , 2017, Journal of applied toxicology : JAT.
[13] K. Kuča,et al. Gender and geographical variability in the exposure pattern and metabolism of deoxynivalenol in humans: a review , 2017, Journal of applied toxicology : JAT.
[14] Xiong Guo,et al. Identified molecular mechanism of interaction between environmental risk factors and differential expression genes in cartilage of Kashin–Beck disease , 2016, Medicine.
[15] A. Solhaug,et al. Immunomodulatory effects of individual and combined mycotoxins in the THP-1 cell line. , 2016, Toxicology in vitro : an international journal published in association with BIBRA.
[16] Xiaohua Duan,et al. Sex-Dependent Effects of Cadmium Exposure in Early Life on Gut Microbiota and Fat Accumulation in Mice , 2016, Environmental health perspectives.
[17] J. Mora,et al. β8 Integrin Expression and Activation of TGF-β by Intestinal Dendritic Cells Are Determined by Both Tissue Microenvironment and Cell Lineage , 2016, The Journal of Immunology.
[18] R. Shanmugasundaram,et al. Susceptibility of Broiler Chickens to Coccidiosis When Fed Subclinical Doses of Deoxynivalenol and Fumonisins—Special Emphasis on the Immunological Response and the Mycotoxin Interaction , 2016, Toxins.
[19] T. Drake,et al. Sex differences and hormonal effects on gut microbiota composition in mice , 2016, Gut microbes.
[20] J. Winkler,et al. Effects of deoxynivalenol (DON), zearalenone (ZEN), and related metabolites on equine peripheral blood mononuclear cells (PBMC) in vitro and background occurrence of these toxins in horses , 2016, Mycotoxin Research.
[21] Xiao Rong,et al. Protective effect of Devosia sp. ANSB714 on growth performance, serum chemistry, immunity function and residues in kidneys of mice exposed to deoxynivalenol. , 2016, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[22] J. Clemente,et al. Intestinal Microbiota Is Influenced by Gender and Body Mass Index , 2016, PloS one.
[23] M. Da̧browski,et al. Changes in the Subpopulations of Porcine Peripheral Blood Lymphocytes Induced by Exposure to Low Doses of Zearalenone (ZEN) and Deoxynivalenol (DON) , 2016, Molecules.
[24] Y. Sugita‐Konishi,et al. NF-κB activation via MyD88-dependent Toll-like receptor signaling is inhibited by trichothecene mycotoxin deoxynivalenol. , 2016, The Journal of toxicological sciences.
[25] T. Glenn,et al. Aflatoxin B1 Induced Compositional Changes in Gut Microbial Communities of Male F344 Rats. , 2016, Toxicological sciences : an official journal of the Society of Toxicology.
[26] J. Garssen,et al. The mycotoxin deoxynivalenol facilitates allergic sensitization to whey in mice , 2016, Mucosal Immunology.
[27] K. Ghareeb,et al. Deoxynivalenol in chicken feed alters the vaccinal immune response and clinical biochemical serum parameters but not the intestinal and carcass characteristics. , 2016, Journal of animal physiology and animal nutrition.
[28] R. Burcelin,et al. Intestinal RORrt-generated Th17 cells control type 2 diabetes: A first antidiabetic target identified from the host to microbiota crosstalk , 2016 .
[29] S. Kersten,et al. Does Dietary Deoxynivalenol Modulate the Acute Phase Reaction in Endotoxaemic Pigs?—Lessons from Clinical Signs, White Blood Cell Counts, and TNF-Alpha , 2015, Toxins.
[30] Ana I. Domingos,et al. An IL-23R/IL-22 Circuit Regulates Epithelial Serum Amyloid A to Promote Local Effector Th17 Responses , 2015, Cell.
[31] M. Hattori,et al. Th17 Cell Induction by Adhesion of Microbes to Intestinal Epithelial Cells , 2015, Cell.
[32] M. Cho,et al. Metformin Ameliorates Inflammatory Bowel Disease by Suppression of the STAT3 Signaling Pathway and Regulation of the between Th17/Treg Balance , 2015, PloS one.
[33] R. Morita,et al. Smad2 and Smad3 Inversely Regulate TGF-β Autoinduction in Clostridium butyricum-Activated Dendritic Cells. , 2015, Immunity.
[34] C. Gagnon,et al. Deoxynivalenol (DON) naturally contaminated feed impairs the immune response induced by porcine reproductive and respiratory syndrome virus (PRRSV) live attenuated vaccine , 2015, Vaccine.
[35] F. Guay,et al. Impact of deoxynivalenol (DON) contaminated feed on intestinal integrity and immune response in swine. , 2015, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[36] M. Belosevic,et al. Acute and subchronic effects on immune responses of carp (Cyprinus carpio L.) after exposure to deoxynivalenol (DON) in feed , 2015, Mycotoxin Research.
[37] H. van Loveren,et al. Characterization of the modes of action of deoxynivalenol (DON) in the human Jurkat T-cell line , 2015, Journal of immunotoxicology.
[38] Xiaoping Ma,et al. Deoxynivalenol-induced cytokines and related genes in concanavalin A-stimulated primary chicken splenic lymphocytes. , 2015, Toxicology in vitro : an international journal published in association with BIBRA.
[39] R. Barbouche,et al. The food born mycotoxin deoxynivalenol induces low-grade inflammation in mice in the absence of observed-adverse effects. , 2015, Toxicology letters.
[40] M. Blaser,et al. Altering the Intestinal Microbiota during a Critical Developmental Window Has Lasting Metabolic Consequences , 2014, Cell.
[41] D. Cipolletta. Adipose tissue‐resident regulatory T cells: phenotypic specialization, functions and therapeutic potential , 2014, Immunology.
[42] Yasmine Belkaid,et al. The Alarmin IL-33 Promotes Regulatory T Cell Function in the Intestine , 2014, Nature.
[43] S. Kersten,et al. In vivo effects of deoxynivalenol (DON) on innate immune responses of carp (Cyprinus carpio L.). , 2014, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[44] Zhanju Liu,et al. Dysregulation of mucosal immune response in pathogenesis of inflammatory bowel disease. , 2014, World journal of gastroenterology.
[45] J. Groopman,et al. Public health impacts of foodborne mycotoxins. , 2014, Annual review of food science and technology.
[46] K. Ghareeb,et al. Single and Combined Effects of Deoxynivalenol Mycotoxin and a Microbial Feed Additive on Lymphocyte DNA Damage and Oxidative Stress in Broiler Chickens , 2014, PloS one.
[47] H. van Loveren,et al. DON shares a similar mode of action as the ribotoxic stress inducer anisomycin while TBTO shares ER stress patterns with the ER stress inducer thapsigargin based on comparative gene expression profiling in Jurkat T cells. , 2014, Toxicology letters.
[48] M. Laurentie,et al. Evaluation of an Oral Subchronic Exposure of Deoxynivalenol on the Composition of Human Gut Microbiota in a Model of Human Microbiota-Associated Rats , 2013, PloS one.
[49] M. Tomita,et al. Commensal microbe-derived butyrate induces the differentiation of colonic regulatory T cells , 2013, Nature.
[50] B. Tan,et al. Effects of composite antimicrobial peptides in weanling piglets challenged with deoxynivalenol: I. Growth performance, immune function, and antioxidation capacity. , 2013, Journal of animal science.
[51] Y. Zhang,et al. Gene expression profiling analysis of deoxynivalenol-induced inhibition of mouse thymic epithelial cell proliferation. , 2013, Environmental toxicology and pharmacology.
[52] Aly A. Khan,et al. Gender bias in autoimmunity is influenced by microbiota. , 2013, Immunity.
[53] K. Ghareeb,et al. Effects of Feed Contaminant Deoxynivalenol on Plasma Cytokines and mRNA Expression of Immune Genes in the Intestine of Broiler Chickens , 2013, PloS one.
[54] Jinho Kim,et al. Differential immune modulation by deoxynivalenol (vomitoxin) in mice. , 2013, Toxicology letters.
[55] A. Gasbarrini,et al. Gut Microbial Flora, Prebiotics, and Probiotics in IBD: Their Current Usage and Utility , 2013, BioMed research international.
[56] Wence Wang,et al. Effects of Dietary Arginine and Glutamine on Alleviating the Impairment Induced by Deoxynivalenol Stress and Immune Relevant Cytokines in Growing Pigs , 2013, PLoS ONE.
[57] K. Ghareeb,et al. Protective effects of antioxidants on deoxynivalenol-induced damage in murine lymphoma cells , 2013, Mycotoxin Research.
[58] J. Zentek,et al. The Toxicological Impacts of the Fusarium Mycotoxin, Deoxynivalenol, in Poultry Flocks with Special Reference to Immunotoxicity , 2013, Toxins.
[59] C. Wilkerson,et al. Global protein phosphorylation dynamics during deoxynivalenol-induced ribotoxic stress response in the macrophage. , 2013, Toxicology and applied pharmacology.
[60] Leah M. Feazel,et al. Sex Differences in the Gut Microbiome Drive Hormone-Dependent Regulation of Autoimmunity , 2013, Science.
[61] Y. Mori,et al. Deoxynivalenol impairs the immune functions of neutrophils. , 2013, Molecular nutrition & food research.
[62] Falk Hildebrand,et al. Inflammation-associated enterotypes, host genotype, cage and inter-individual effects drive gut microbiota variation in common laboratory mice , 2013, Genome Biology.
[63] I. Oswald,et al. Deoxynivalenol as a New Factor in the Persistence of Intestinal Inflammatory Diseases: An Emerging Hypothesis through Possible Modulation of Th17-Mediated Response , 2013, PloS one.
[64] A. Quaroni,et al. Nivalenol and Deoxynivalenol Affect Rat Intestinal Epithelial Cells: A Concentration Related Study , 2012, PloS one.
[65] H. van Loveren,et al. Transcriptome analysis of the human T lymphocyte cell line Jurkat and human peripheral blood mononuclear cells exposed to deoxynivalenol (DON): New mechanistic insights. , 2012, Toxicology and applied pharmacology.
[66] A. Regev,et al. Induction and molecular signature of pathogenic TH17 cells , 2012, Nature Immunology.
[67] I. Oswald,et al. Chronic ingestion of deoxynivalenol and fumonisin, alone or in interaction, induces morphological and immunological changes in the intestine of piglets. , 2012, The British journal of nutrition.
[68] A. Ford,et al. Effect of Gender on Prevalence of Irritable Bowel Syndrome in the Community: Systematic Review and Meta-Analysis , 2012, The American Journal of Gastroenterology.
[69] C. Lemaire,et al. Involvement of mitochondria-mediated apoptosis in deoxynivalenol cytotoxicity. , 2012, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[70] C. Benoist,et al. PPARγ is a major driver of the accumulation and phenotype of adipose-tissue Treg cells , 2012, Nature.
[71] Xichun Wang,et al. A mitochondria-mediated apoptotic pathway induced by deoxynivalenol in human colon cancer cells. , 2012, Toxicology in vitro : an international journal published in association with BIBRA.
[72] J. Zentek,et al. Highly deoxynivalenol contaminated oats and immune function in horses , 2012, Archives of animal nutrition.
[73] C. Benoist,et al. Tissular T(regs): a unique population of adipose-tissue-resident Foxp3+CD4+ T cells that impacts organismal metabolism. , 2011, Seminars in immunology.
[74] E. Pamer,et al. Role of the commensal microbiota in normal and pathogenic host immune responses. , 2011, Cell host & microbe.
[75] G. Gauglitz,et al. Biosensors Paving the Way to Understanding the Interaction between Cadmium and the Estrogen Receptor Alpha , 2011, PloS one.
[76] M. Pfaffl,et al. Expression of immune relevant genes in pigs under the influence of low doses of deoxynivalenol (DON) , 2011, Mycotoxin Research.
[77] C. Wild,et al. An analysis of the phosphoproteome of immune cell lines exposed to the immunomodulatory mycotoxin deoxynivalenol. , 2011, Biochimica et biophysica acta.
[78] C. Wild,et al. Proteomic analysis of the effects of the immunomodulatory mycotoxin deoxynivalenol , 2011, Proteomics.
[79] Bin Li,et al. FOXP3 and RORγt: transcriptional regulation of Treg and Th17. , 2011, International immunopharmacology.
[80] Amy S. Lee,et al. The critical role of GRP78 in physiologic and pathologic stress. , 2011, Current opinion in cell biology.
[81] Richard A Flavell,et al. Autocrine transforming growth factor-β1 promotes in vivo Th17 cell differentiation. , 2011, Immunity.
[82] K. Honda,et al. Induction of Colonic Regulatory T Cells by Indigenous Clostridium Species , 2011, Science.
[83] C. K. Girish,et al. Effects of feed-borne Fusarium mycotoxins and an organic mycotoxin adsorbent on immune cell dynamics in the jejunum of chickens infected with Eimeria maxima. , 2010, Veterinary immunology and immunopathology.
[84] E. K. Kemsley,et al. Ulcerative colitis and irritable bowel patients exhibit distinct abnormalities of the gut microbiota , 2010, BMC gastroenterology.
[85] W. Paul,et al. Peripheral CD4+ T‐cell differentiation regulated by networks of cytokines and transcription factors , 2010, Immunological reviews.
[86] J. Nougayrède,et al. Deoxynivalenol impairs porcine intestinal barrier function and decreases the protein expression of claudin-4 through a mitogen-activated protein kinase-dependent mechanism. , 2010, The Journal of nutrition.
[87] H. van Loveren,et al. Transcriptomic profile indicative of immunotoxic exposure: in vitro studies in peripheral blood mononuclear cells. , 2010, Toxicological sciences : an official journal of the Society of Toxicology.
[88] C. K. Girish,et al. Effects of dietary Fusarium mycotoxins on intestinal lymphocyte subset populations, cell proliferation and histological changes in avian lymphoid organs. , 2010, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[89] Y. Schneider,et al. Physio-pathological parameters affect the activation of inflammatory pathways by deoxynivalenol in Caco-2 cells. , 2010, Toxicology in vitro : an international journal published in association with BIBRA.
[90] V. Adam,et al. Deoxynivalenol and its toxicity , 2010, Interdisciplinary toxicology.
[91] J. Pestka. Deoxynivalenol: mechanisms of action, human exposure, and toxicological relevance , 2010, Archives of Toxicology.
[92] Richard A. Flavell,et al. The polarization of immune cells in the tumour environment by TGFβ , 2010, Nature Reviews Immunology.
[93] B. Finlay,et al. Gut microbiota in health and disease. , 2010, Physiological reviews.
[94] R. Burlacu,et al. Comparative aspects of in vitro proliferation of human and porcine lymphocytes exposed to mycotoxins , 2010, Archives of animal nutrition.
[95] N. Scholtz,et al. Effects of an active immunization on the immune response of laying Japanese quail (Coturnix coturnix japonica) fed with or without genetically modified Bacillus thuringiensis-maize. , 2010, Poultry science.
[96] J. Pestka. Deoxynivalenol-Induced Proinflammatory Gene Expression: Mechanisms and Pathological Sequelae , 2010, Toxins.
[97] K. Takeuchi,et al. The increased mucosal mRNA expressions of complement C3 and interleukin‐17 in inflammatory bowel disease , 2010, Clinical and experimental immunology.
[98] Dan R. Littman,et al. Induction of Intestinal Th17 Cells by Segmented Filamentous Bacteria , 2009, Cell.
[99] Annaïg Lan,et al. The key role of segmented filamentous bacteria in the coordinated maturation of gut helper T cell responses. , 2009, Immunity.
[100] Zhanju Liu,et al. All‐trans retinoic acid down‐regulates inflammatory responses by shifting the Treg/Th17 profile in human ulcerative and murine colitis , 2009, Journal of leukocyte biology.
[101] E. Angelis,et al. Cellular immune response and immunotoxicity induced by DON (deoxynivalenol) in piglets , 2009, Veterinary Research Communications.
[102] Klas Blomgren,et al. Mitochondrial membrane permeabilization in neuronal injury , 2009, Nature Reviews Neuroscience.
[103] M. Kohut,et al. Deoxynivalenol suppresses circulating and splenic leukocyte subpopulations in BALB/c mice: dose response, time course and sex differences , 2009, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.
[104] J. Nougayrède,et al. The food contaminant deoxynivalenol, decreases intestinal barrier permeability and reduces claudin expression. , 2009, Toxicology and applied pharmacology.
[105] T. Smith,et al. Effects of feed naturally contaminated with Fusarium mycotoxins on metabolism and immunity of dairy cows. , 2009, Journal of dairy science.
[106] S. Park,et al. Epithelial cell survival by activating transcription factor 3 (ATF3) in response to chemical ribosome-inactivating stress. , 2009, Biochemical pharmacology.
[107] S. Gaffen,et al. Th17 cells and IL-17 receptor signaling are essential for mucosal host defense against oral candidiasis , 2009, The Journal of experimental medicine.
[108] S. Bougeard,et al. Impact of Deoxynivalenol on the Intestinal Microflora of Pigs , 2008, International journal of molecular sciences.
[109] Trevor K. Smith,et al. Immunomodulatory Effects of Feed-Borne Fusarium Mycotoxins in Chickens Infected with Coccidia , 2008, Experimental biology and medicine.
[110] S. Assefa,et al. Role of sex steroid receptors in pathobiology of hepatocellular carcinoma. , 2008, World journal of gastroenterology.
[111] D. Rifkin,et al. Specific microbiota direct the differentiation of IL-17-producing T-helper cells in the mucosa of the small intestine. , 2008, Cell host & microbe.
[112] J. Cleveland,et al. Myc regulates aggresome formation, the induction of Noxa, and apoptosis in response to the combination of bortezomib and SAHA. , 2008, Blood.
[113] E. Fish. The X-files in immunity: sex-based differences predispose immune responses , 2008, Nature Reviews Immunology.
[114] J. Pestka,et al. Comparative induction of 28S ribosomal RNA cleavage by ricin and the trichothecenes deoxynivalenol and T-2 toxin in the macrophage. , 2008, Toxicological sciences : an official journal of the Society of Toxicology.
[115] J. Pestka. Mechanisms of deoxynivalenol-induced gene expression and apoptosis , 2008, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.
[116] M. Rossi,et al. Immune effects of four Fusarium-toxins (FB1, ZEA, NIV, DON) on the proliferation of Jurkat cells and porcine lymphocytes: in vitro study , 2008, Veterinary Research Communications.
[117] I. Plachá,et al. Effects of deoxynivalenol and zearalenone on oxidative stress and blood phagocytic activity in broilers , 2008, Archives of Animal Nutrition.
[118] A. Kulkarni,et al. A critical function for TGF-β signaling in the development of natural CD4+CD25+Foxp3+ regulatory T cells , 2008, Nature Immunology.
[119] M. McGeachy,et al. Th17 cell differentiation: the long and winding road. , 2008, Immunity.
[120] F. Grosjean,et al. Ingestion of deoxynivalenol (DON) contaminated feed alters the pig vaccinal immune responses. , 2008, Toxicology letters.
[121] Y. Hashiba,et al. Effects of mycotoxins on mitogen-stimulated proliferation of bovine peripheral blood mononuclear cells. , 2008, The Journal of veterinary medical science.
[122] Yung-Hyun Choi,et al. Ribotoxic mycotoxin deoxynivalenol induces G2/M cell cycle arrest via p21Cip/WAF1 mRNA stabilization in human epithelial cells. , 2008, Toxicology.
[123] D. Littman,et al. Transcriptional regulation of Th17 cell differentiation. , 2007, Seminars in immunology.
[124] P. Murphy,et al. Synthesis and characterization of deoxynivalenol glucuronide: its comparative immunotoxicity with deoxynivalenol. , 2007, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[125] J. Pestka. Deoxynivalenol: Toxicity, mechanisms and animal health risks , 2007 .
[126] P. Stoll,et al. Effects of Fusarium toxins on growth, humoral immune response and internal organs in weaner pigs, and the efficacy of apple pomace as an antidote. , 2007, Journal of animal physiology and animal nutrition.
[127] J. Bluestone,et al. Loss of integrin αvβ8 on dendritic cells causes autoimmunity and colitis in mice , 2007 .
[128] Y. Moon,et al. Toxic alterations in chick embryonic liver and spleen by acute exposure to Fusarium-producing mycotoxin deoxynivalenol. , 2007, Biological & pharmaceutical bulletin.
[129] T. Smith,et al. Effects of feedborne Fusarium mycotoxins on the performance, metabolism, and immunity of dairy cows. , 2007, Journal of dairy science.
[130] K. Asadullah,et al. IL-22 Induces Lipopolysaccharide-Binding Protein in Hepatocytes: A Potential Systemic Role of IL-22 in Crohn’s Disease , 2007, The Journal of Immunology.
[131] D. Bredesen,et al. Endoplasmic reticulum stress-induced cell death mediated by the proteasome , 2007, Cell Death and Differentiation.
[132] C. Cuff,et al. Deoxynivalenol exacerbates viral bronchopneumonia induced by respiratory reovirus infection. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.
[133] A. Levart,et al. The role of dietary nucleotides in reduction of DNA damage induced by T-2 toxin and deoxynivalenol in chicken leukocytes. , 2006, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[134] M. Rossi,et al. Mycotoxins nivalenol and deoxynivalenol differentially modulate cytokine mRNA expression in Jurkat T cells. , 2006, Cytokine.
[135] S. Dänicke,et al. Research note: Effects of deoxynivalenol on immunohistological parameters in pigs , 2006, Mycotoxin Research.
[136] R. Flavell,et al. Transforming Growth Factor-β Controls Development, Homeostasis, and Tolerance of T Cells by Regulatory T Cell-Dependent and -Independent Mechanisms , 2006 .
[137] S. Dänicke,et al. Effect of the Fusarium toxin deoxynivalenol (DON) on IgA, IgM and IgG concentrations and proliferation of porcine blood lymphocytes. , 2006, Toxicology in vitro : an international journal published in association with BIBRA.
[138] D Parent-Massin,et al. In vitro effects of trichothecenes on human dendritic cells. , 2006, Toxicology in vitro : an international journal published in association with BIBRA.
[139] A. Rudensky,et al. Cellular mechanisms of fatal early-onset autoimmunity in mice with the T cell-specific targeting of transforming growth factor-beta receptor. , 2006, Immunity.
[140] J. Pestka,et al. Toll-like receptor priming sensitizes macrophages to proinflammatory cytokine gene induction by deoxynivalenol and other toxicants. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.
[141] R. Anderson,et al. The effect of simulated lens yellowing and opacification on blue-on-yellow acuity and contrast sensitivity , 2006, Vision Research.
[142] H. Weiner,et al. Reciprocal developmental pathways for the generation of pathogenic effector TH17 and regulatory T cells , 2006, Nature.
[143] K. Herrmann,et al. IL-22 is increased in active Crohn's disease and promotes proinflammatory gene expression and intestinal epithelial cell migration. , 2006, American journal of physiology. Gastrointestinal and liver physiology.
[144] Amy S. Lee,et al. Endoplasmic Reticulum Stress-induced Apoptosis , 2006, Journal of Biological Chemistry.
[145] J. Doré,et al. Differences in Fecal Microbiota in Different European Study Populations in Relation to Age, Gender, and Country: a Cross-Sectional Study , 2006, Applied and Environmental Microbiology.
[146] M. Kohut,et al. Low-Level Dietary Deoxynivalenol and Acute Exercise Stress Result in Immunotoxicity in BALB/c Mice , 2006, Journal of immunotoxicology.
[147] J. Pestka,et al. Deoxynivalenol: Toxicology and Potential Effects on Humans , 2005, Journal of toxicology and environmental health. Part B, Critical reviews.
[148] J. Shellito,et al. Divergent roles of IL-23 and IL-12 in host defense against Klebsiella pneumoniae , 2005, The Journal of experimental medicine.
[149] J. Pestka,et al. Role of cyclooxygenase-2 in deoxynivalenol-induced immunoglobulin a nephropathy. , 2005, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[150] S. Sakaguchi. Naturally arising Foxp3-expressing CD25+CD4+ regulatory T cells in immunological tolerance to self and non-self , 2005, Nature Immunology.
[151] K. Nakanishi,et al. Translocation of Bim to the Endoplasmic Reticulum (ER) Mediates ER Stress Signaling for Activation of Caspase-12 during ER Stress-induced Apoptosis* , 2004, Journal of Biological Chemistry.
[152] M. Gorospe,et al. Prostaglandin A2-mediated Stabilization of p21 mRNA through an ERK-dependent Pathway Requiring the RNA-binding Protein HuR* , 2004, Journal of Biological Chemistry.
[153] J. Pestka,et al. Cellular and molecular mechanisms for immune modulation by deoxynivalenol and other trichothecenes: unraveling a paradox. , 2004, Toxicology letters.
[154] J. Corton,et al. GENE EXPRESSION PROFILING IN SPLEENS OF DEOXYNIVALENOL-EXPOSED MICE: IMMEDIATE EARLY GENES AS PRIMARY TARGETS , 2004, Journal of toxicology and environmental health. Part A.
[155] H. Piepho,et al. Serum IgA-Promoting Effects Induced by Feed Loads Containing Isolated Deoxynivalenol (DON) in Growing Piglets , 2004, Journal of toxicology and environmental health. Part A.
[156] S. Oyadomari,et al. Roles of CHOP/GADD153 in endoplasmic reticulum stress , 2004, Cell Death and Differentiation.
[157] J. Pestka,et al. Transcriptional and posttranscriptional roles for p38 mitogen-activated protein kinase in upregulation of TNF-alpha expression by deoxynivalenol (vomitoxin). , 2003, Toxicology and applied pharmacology.
[158] J. Pestka,et al. Role of double-stranded RNA-activated protein kinase R (PKR) in deoxynivalenol-induced ribotoxic stress response. , 2003, Toxicological sciences : an official journal of the Society of Toxicology.
[159] M. Heitkemper,et al. Impact of Sex and Gender on Irritable Bowel Syndrome , 2003, Biological research for nursing.
[160] J. Pestka,et al. Relationship of Trichothecene Structure to Cox-2 Induction in the Macrophage: Selective Action of Type B (8-Keto) Trichothecenes , 2003, Journal of toxicology and environmental health. Part A.
[161] J. Knebel,et al. Novel approaches for studying pulmonary toxicity in vitro. , 2003, Toxicology letters.
[162] J. Pestka,et al. Cyclooxygenase-2 mediates interleukin-6 upregulation by vomitoxin (deoxynivalenol) in vitro and in vivo. , 2003, Toxicology and applied pharmacology.
[163] Z. Islam,et al. Rapid, sequential activation of mitogen-activated protein kinases and transcription factors precedes proinflammatory cytokine mRNA expression in spleens of mice exposed to the trichothecene vomitoxin. , 2003, Toxicological sciences : an official journal of the Society of Toxicology.
[164] A. Andoh,et al. Increased expression of interleukin 17 in inflammatory bowel disease , 2003, Gut.
[165] J. Pestka,et al. Vomitoxin-induced cyclooxygenase-2 gene expression in macrophages mediated by activation of ERK and p38 but not JNK mitogen-activated protein kinases. , 2002, Toxicological sciences : an official journal of the Society of Toxicology.
[166] P. Sly,et al. Constitutive Activation of the Src Family Kinase Hck Results in Spontaneous Pulmonary Inflammation and an Enhanced Innate Immune Response , 2002, The Journal of experimental medicine.
[167] E. Creppy. Update of survey, regulation and toxic effects of mycotoxins in Europe. , 2002, Toxicology letters.
[168] T. Tsuruo,et al. Involvement of transcriptional repressor ATF3 in acceleration of caspase protease activation during DNA damaging agent‐induced apoptosis , 2001, Journal of cellular physiology.
[169] C. Wild,et al. Deoxynivalenol-induced immunomodulation of human lymphocyte proliferation and cytokine production. , 2001, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[170] B. Williams. Signal Integration via PKR , 2001, Science's STKE.
[171] J. Molnár,et al. Effects of mycotoxins on human immune functions in vitro. , 2001, Toxicology in vitro : an international journal published in association with BIBRA.
[172] J. Pestka,et al. Immunomodulation by fungal toxins. , 2000, Journal of toxicology and environmental health. Part B, Critical reviews.
[173] H. Köhler,et al. Studies on the influence of combined administration of ochratoxin A, fumonisin B1, deoxynivalenol and T2 toxin on immune and defence reactions in weaner pigs , 1999, Mycoses.
[174] A. Thuvander,et al. In vitro exposure of human lymphocytes to trichothecenes: individual variation in sensitivity and effects of combined exposure on lymphocyte function. , 1999, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[175] T. Ali-vehmas,et al. Measurement of antibacterial activities of T-2 toxin, deoxynivalenol, ochratoxin A, aflatoxin B1 and fumonisin B1 using microtitration tray-based turbidimetric techniques. , 1998, Zentralblatt fur Veterinarmedizin. Reihe A.
[176] M. Iordanov,et al. Ribotoxic stress response: activation of the stress-activated protein kinase JNK1 by inhibitors of the peptidyl transferase reaction and by sequence-specific RNA damage to the alpha-sarcin/ricin loop in the 28S rRNA , 1997, Molecular and cellular biology.
[177] J. H. Jansen,et al. Effects of diets with graded levels of naturally deoxynivalenol-contaminated oats on immune response in growing pigs. , 1997, Zentralblatt fur Veterinarmedizin. Reihe A.
[178] W. Bellini,et al. Generation of defective interfering particles by two vaccine strains of measles virus. , 1996, Virology.
[179] Ouyang,et al. Vomitoxin-Mediated IL-2, IL-4, and IL-5 Superinduction in Murine CD4+ T Cells Stimulated with Phorbol Ester and Calcium Ionophore: Relation to Kinetics of Proliferation , 1996, Toxicology and applied pharmacology.
[180] D. Podolsky,et al. Cytokine modulation of intestinal epithelial cell restitution: central role of transforming growth factor beta. , 1993, Gastroenterology.
[181] G. Proetzel,et al. Targeted disruption of the mouse transforming growth factor-β1 gene results in multifocal inflammatory disease , 1992, Nature.
[182] J. Pestka,et al. Vomitoxin-induced dysregulation of serum IgA, IgM and IgG reactive with gut bacterial and self antigens. , 1992, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[183] R. Harvey,et al. Hematologic and immunologic toxicity of deoxynivalenol (DON)-contaminated diets to growing chickens , 1991, Bulletin of environmental contamination and toxicology.
[184] S. Beedu,et al. OUTBREAK OF TRICHOTHECENE MYCOTOXICOSIS ASSOCIATED WITH CONSUMPTION OF MOULD-DAMAGED WHEAT PRODUCTS IN KASHMIR VALLEY, INDIA , 1989, The Lancet.
[185] J. Pestka,et al. Suppression of immune response in the B6C3F1 mouse after dietary exposure to the Fusarium mycotoxins deoxynivalenol (vomitoxin) and zearalenone. , 1987, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[186] M. Bickis,et al. The toxicity of orally administered deoxynivalenol (vomitoxin) in rats and mice. , 1986, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[187] K. Miller,et al. The in vitro effects of trichothecenes on the immune system. , 1986, Archives of toxicology. Supplement. = Archiv fur Toxikologie. Supplement.
[188] J. Pestka,et al. Effects of 8-week exposure of the B6C3F1 mouse to dietary deoxynivalenol (vomitoxin) and zearalenone. , 1986, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[189] H. Tryphonas,et al. Effects of deoxynivalenol (vomitoxin) on the humoral and cellular immunity of mice. , 1986, Toxicology letters.
[190] K. Miller,et al. Inhibitory effect of deoxynivalenol, 3-acetyldeoxynivalenol and zearalenone on induction of rat and human lymphocyte proliferation. , 1984, Toxicology letters.
[191] H. Tryphonas,et al. Effect of deoxynivalenol (vomitoxin) on the humoral immunity of mice. , 1984, Toxicology letters.
[192] Shumin Yu,et al. The Fusarium toxin zearalenone and deoxynivalenol affect murine splenic antioxidant functions, interferon levels, and T-cell subsets. , 2016, Environmental toxicology and pharmacology.
[193] Z. Zuo,et al. Deoxynivalenol induces apoptosis in chicken splenic lymphocytes via the reactive oxygen species-mediated mitochondrial pathway. , 2015, Environmental toxicology and pharmacology.
[194] J. Pestka,et al. Modulation of inflammatory gene expression by the ribotoxin deoxynivalenol involves coordinate regulation of the transcriptome and translatome. , 2013, Toxicological sciences : an official journal of the Society of Toxicology.
[195] S. Kim,et al. Effects of chronic exposure of diets with reduced concentrations of aflatoxin and deoxynivalenol on growth and immune status of pigs. , 2011, Journal of animal science.
[196] M. Rossi,et al. Trichothecenes NIV and DON modulate the maturation of murine dendritic cells. , 2010, Toxicon : official journal of the International Society on Toxinology.
[197] H. Zhang,et al. Endoplasmic reticulum stress-induced cell survival and apoptosis. , 2009 .
[198] Kyung W. Park. Perioperative echocardiography. Preface. , 2008, International anesthesiology clinics.
[199] J. Pestka,et al. Elevated membrane IgA+ and CD4+ (T helper) populations in murine Peyer's patch and splenic lymphocytes during dietary administration of the trichothecene vomitoxin (deoxynivalenol). , 1990, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[200] J. L. Wu,et al. Natural occurrence and clastogenic effects of nivalenol, deoxynivalenol, 3-acetyl-deoxynivalenol, 15-acetyl-deoxynivalenol, and zearalenone in corn from a high-risk area of esophageal cancer. , 1988, Cancer detection and prevention.