Regulation and function of the cytosolic viral RNA sensor RIG-I in pancreatic beta cells.
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G. Hartmann | Shintaro Sato | D. Eizirik | J. Rasschaert | Z. Doğusan | F. Moore | Mónica García | Z. Dogusan
[1] D. Eizirik,et al. MDA5 and PTPN2, two candidate genes for type 1 diabetes, modify pancreatic β-cell responses to the viral by-product double-stranded RNA , 2009, Human molecular genetics.
[2] F. Ortis,et al. The role of inflammation in insulitis and β-cell loss in type 1 diabetes , 2009, Nature Reviews Endocrinology.
[3] N. Morgan,et al. The prevalence of enteroviral capsid protein vp1 immunostaining in pancreatic islets in human type 1 diabetes , 2009, Diabetologia.
[4] J. Ring,et al. Double-Stranded RNA Induces an Antiviral Defense Status in Epidermal Keratinocytes through TLR3-, PKR-, and MDA5/RIG-I-Mediated Differential Signaling1 , 2008, The Journal of Immunology.
[5] D. Eizirik,et al. Use of a systems biology approach to understand pancreatic beta-cell death in Type 1 diabetes. , 2008, Biochemical Society transactions.
[6] C. Mathieu,et al. Double-Stranded RNA Induces Pancreatic β-Cell Apoptosis by Activation of the Toll-Like Receptor 3 and Interferon Regulatory Factor 3 Pathways , 2008, Diabetes.
[7] M. Yoneyama,et al. Cytoplasmic recognition of RNA. , 2008, Advanced drug delivery reviews.
[8] D. Swinney,et al. Essential Role of the N-terminal Domain in the Regulation of RIG-I ATPase Activity* , 2008, Journal of Biological Chemistry.
[9] P. Kovanen,et al. Cytosolic Antiviral RNA Recognition Pathway Activates Caspases 1 and 31 , 2008, The Journal of Immunology.
[10] J. Blomberg,et al. Recent enterovirus infection in type 1 diabetes: Evidence with a novel IgM method , 2007, Journal of medical virology.
[11] C. Cameron,et al. 5'-Triphosphate-Dependent Activation of PKR by RNAs with Short Stem-Loops , 2007, Science.
[12] Michael G. Katze,et al. Distinct RIG-I and MDA5 Signaling by RNA Viruses in Innate Immunity , 2007, Journal of Virology.
[13] Annika Olsson,et al. Interferons induce an antiviral state in human pancreatic islet cells. , 2007, Virology.
[14] M. Yoneyama,et al. RIG-I family RNA helicases: cytoplasmic sensor for antiviral innate immunity. , 2007, Cytokine & growth factor reviews.
[15] K. Fukase,et al. Various human epithelial cells express functional Toll-like receptors, NOD1 and NOD2 to produce anti-microbial peptides, but not proinflammatory cytokines. , 2007, Molecular immunology.
[16] U. Boggi,et al. Coxsackie B4 virus infection of β cells and natural killer cell insulitis in recent-onset type 1 diabetic patients , 2007, Proceedings of the National Academy of Sciences.
[17] Shizuo Akira,et al. Antiviral signaling through pattern recognition receptors. , 2006, Journal of biochemistry.
[18] Allan R. Brasier,et al. Retinoic Acid-Inducible Gene I Mediates Early Antiviral Response and Toll-Like Receptor 3 Expression in Respiratory Syncytial Virus-Infected Airway Epithelial Cells , 2006, Journal of Virology.
[19] Gunther Hartmann,et al. 5'-Triphosphate RNA Is the Ligand for RIG-I , 2006, Science.
[20] A. Pichlmair,et al. RIG-I-Mediated Antiviral Responses to Single-Stranded RNA Bearing 5'-Phosphates , 2006, Science.
[21] L. O’Neill,et al. TLRs, NLRs and RLRs: a trinity of pathogen sensors that co-operate in innate immunity. , 2006, Trends in immunology.
[22] K. Gillespie. Type 1 diabetes: pathogenesis and prevention , 2006, Canadian Medical Association Journal.
[23] Michael Karin,et al. Intracellular pattern recognition receptors in the host response , 2006, Nature.
[24] K. Ishii,et al. Differential roles of MDA5 and RIG-I helicases in the recognition of RNA viruses , 2006, Nature.
[25] D. Al-Khairy,et al. Innate Immunity at the Mucosal Surface: Role of Toll-Like Receptor 3 and Toll-Like Receptor 9 in Cervical Epithelial Cell Responses to Microbial Pathogens1 , 2006, Biology of reproduction.
[26] P. Ahlquist. Parallels among positive-strand RNA viruses, reverse-transcribing viruses and double-stranded RNA viruses , 2006, Nature Reviews Microbiology.
[27] M. Honeyman. How robust is the evidence for viruses in the induction of type 1 diabetes? , 2005, Current opinion in immunology.
[28] S. Akira,et al. Toll-like Receptor 3 and STAT-1 Contribute to Double-stranded RNA+ Interferon-γ-induced Apoptosis in Primary Pancreatic β-Cells* , 2005, Journal of Biological Chemistry.
[29] Z. Zhai,et al. VISA Is an Adapter Protein Required for Virus-Triggered IFN-β Signaling , 2005 .
[30] Shizuo Akira,et al. Shared and Unique Functions of the DExD/H-Box Helicases RIG-I, MDA5, and LGP2 in Antiviral Innate Immunity1 , 2005, The Journal of Immunology.
[31] R. Lahesmaa,et al. Global profiling of coxsackievirus- and cytokine-induced gene expression in human pancreatic islets , 2005, Diabetologia.
[32] Osamu Takeuchi,et al. Cell type-specific involvement of RIG-I in antiviral response. , 2005, Immunity.
[33] S. Lemon,et al. Distinct Poly(I-C) and Virus-activated Signaling Pathways Leading to Interferon-β Production in Hepatocytes* , 2005, Journal of Biological Chemistry.
[34] S. Akira,et al. Toll-like receptor engagement converts T-cell autoreactivity into overt autoimmune disease , 2005, Nature Medicine.
[35] G. Sen,et al. Transcriptional signaling by double-stranded RNA: role of TLR3. , 2005, Cytokine & growth factor reviews.
[36] S. Akira,et al. Toll-like receptors in innate immunity. , 2004, International immunology.
[37] M. Cnop,et al. Free Fatty Acids and Cytokines Induce Pancreatic β-Cell Apoptosis by Different Mechanisms: Role of Nuclear Factor-κB and Endoplasmic Reticulum Stress , 2004 .
[38] L. Malmgaard. Induction and regulation of IFNs during viral infections. , 2004, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[39] Shizuo Akira,et al. The RNA helicase RIG-I has an essential function in double-stranded RNA-induced innate antiviral responses , 2004, Nature Immunology.
[40] T. Tuvemo,et al. Enterovirus infections with β‐cell tropic strains are frequent in siblings of children diagnosed with type 1 diabetes children and in association with elevated levels of GAD65 antibodies , 2004, Journal of medical virology.
[41] G. Eisenbarth,et al. Interferon alpha--a potential link in the pathogenesis of viral-induced type 1 diabetes and autoimmunity. , 2004, Clinical immunology.
[42] L. Wen,et al. The Effect of Innate Immunity on Autoimmune Diabetes and the Expression of Toll-Like Receptors on Pancreatic Islets1 , 2004, The Journal of Immunology.
[43] T. Ørntoft,et al. Global profiling of double stranded RNA- and IFN-γ-induced genes in rat pancreatic beta cells , 2003, Diabetologia.
[44] S. Akira,et al. Role of Adaptor TRIF in the MyD88-Independent Toll-Like Receptor Signaling Pathway , 2003, Science.
[45] Dongbo Liu,et al. Double-Stranded RNA Cooperates with Interferon-γ and IL-1β to Induce Both Chemokine Expression and Nuclear Factor-κB-Dependent Apoptosis in Pancreatic β-Cells: Potential Mechanisms for Viral-Induced Insulitis and β-Cell Death in Type 1 Diabetes Mellitus. , 2002, Endocrinology.
[46] T. Taniguchi,et al. The interferon-α/β system in antiviral responses: a multimodal machinery of gene regulation by the IRF family of transcription factors , 2002 .
[47] B. Decallonne,et al. An overview of real-time quantitative PCR: applications to quantify cytokine gene expression. , 2001, Methods.
[48] R. Flavell,et al. Recognition of double-stranded RNA and activation of NF-κB by Toll-like receptor 3 , 2001, Nature.
[49] D. Eizirik,et al. Inhibition of cytokine-induced NF-kappaB activation by adenovirus-mediated expression of a NF-kappaB super-repressor prevents beta-cell apoptosis. , 2001, Diabetes.
[50] Dongbo Liu,et al. Double-Stranded Ribonucleic Acid (RNA) Induces β-Cell Fas Messenger RNA Expression and Increases Cytokine-Induced β-Cell Apoptosis. , 2001, Endocrinology.
[51] M. Kruhøffer,et al. Identification of novel cytokine-induced genes in pancreatic beta-cells by high-density oligonucleotide arrays. , 2001, Diabetes.
[52] H. Jun,et al. The role of viruses in Type I diabetes: two distinct cellular and molecular pathogenic mechanisms of virus-induced diabetes in animals , 2001, Diabetologia.
[53] F. Pattou,et al. Persistent Infection of Human Pancreatic Islets by Coxsackievirus B Is Associated with Alpha Interferon Synthesis in β Cells , 2000, Journal of Virology.
[54] D. Eizirik,et al. Activation of extracellular signal-regulated kinase (ERK)1/2 contributes to cytokine-induced apoptosis in purified rat pancreatic beta-cells. , 2000, European cytokine network.
[55] Dongbo Liu,et al. Cytokines induce apoptosis in beta-cells isolated from mice lacking the inducible isoform of nitric oxide synthase (iNOS-/-). , 2000, Diabetes.
[56] J. Weill,et al. Increased level of interferon-alpha in blood of patients with insulin-dependent diabetes mellitus: relationship with coxsackievirus B infection. , 2000, The Journal of infectious diseases.
[57] D. Eizirik,et al. Interleukin-1beta-induced alteration in a beta-cell phenotype can reduce cellular sensitivity to conditions that cause necrosis but not to cytokine-induced apoptosis. , 2000, Diabetes.
[58] G. Clements,et al. Enterovirus variants in the serum of children at the onset of Type 1 diabetes mellitus , 1999, Diabetic medicine : a journal of the British Diabetic Association.
[59] J. Corbett,et al. Double-stranded RNA Inhibits β-Cell Function and Induces Islet Damage by Stimulating β-Cell Production of Nitric Oxide* , 1999, The Journal of Biological Chemistry.
[60] J. Krueger,et al. Spontaneous release of stable viral double-stranded RNA into the extracellular medium by influenza virus-infected MDCK epithelial cells: implications for the viral acute phase response , 1998, Archives of Virology.
[61] I. Fajardy,et al. Coxsackie B virus infection and beta cell autoantibodies in newly diagnosed IDDM adult patients. , 1998, Clinical and diagnostic virology.
[62] D. Pipeleers,et al. Cytokines Induce Deoxyribonucleic Acid Strand Breaks and Apoptosis in Human Pancreatic Islet Cells. , 1997, Endocrinology.
[63] D. Pipeleers,et al. Glucose promotes survival of rat pancreatic beta cells by activating synthesis of proteins which suppress a constitutive apoptotic program. , 1996, The Journal of clinical investigation.
[64] J. Langland,et al. When two strands are better than one: the mediators and modulators of the cellular responses to double-stranded RNA. , 1996, Virology.
[65] Å. Lernmark,et al. Interferon Expression in the Pancreases of Patients With Type I Diabetes , 1995, Diabetes.
[66] J. Bellanti,et al. Poly I:C Induces Development of Diabetes Mellitus in BB Rat , 1992, Diabetes.
[67] P. Muir,et al. Enterovirus‐specific serum IgA antibody responses in patients with acute infections, chronic cardiac disease, and recently diagnosed insulin‐dependent diabetes mellitus , 1990, Journal of medical virology.
[68] A. Meager,et al. IMMUNOREACTIVE α-INTERFERON IN INSULIN-SECRETING β CELLS IN TYPE 1 DIABETES MELLITUS , 1987, The Lancet.
[69] D. Eizirik,et al. PTPN2 and MDA5, two candidate genes for type 1 diabetes, modify beta cell responses to double-stranded RNA , 2009 .
[70] S. Tracy,et al. The CVB and etiology of type 1 diabetes. , 2008, Current topics in microbiology and immunology.
[71] M. Gale,et al. CARD games between virus and host get a new player. , 2006, Trends in immunology.