NFκB and Its Inhibitor IκB in Relation to Type 2 Diabetes and Its Microvascular and Atherosclerotic Complications
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Ivan Rychlik | M. Černá | K. Kološtová | Sarka Ruzickova | Katarina Kolostova | M. Romzova | D. Pintérová | Marianna Romzova | Daniela Hohenadel | Daniela Pinterova | Markéta Fojtíková | Ctibor Dostál | Vladimir Bosak | Marie Cerna | S. Růz̆ic̆ková | C. Dostal | I. Rychlík | M. Fojtíková | V. Bošák | D. Hohenadel
[1] E. Ho,et al. Antioxidants, NFκB Activation, and Diabetogenesis , 1999 .
[2] A. Bast,et al. Transcription factor NF-κB as a potential biomarker for oxidative stress , 2001, British Journal of Nutrition.
[3] L. Padyukov,et al. MICA4/HLA-DRB1*04/TNF1 haplotype is associated with mixed connective tissue disease in Swedish patients. , 2003, Human immunology.
[4] Béatrice Conne,et al. The 3′ untranslated region of messenger RNA: A molecular ‘hotspot’ for pathology? , 2000, Nature Medicine.
[5] Michael Karin,et al. Reversal of Obesity- and Diet-Induced Insulin Resistance with Salicylates or Targeted Disruption of Ikkβ , 2001, Science.
[6] S. Schiekofer,et al. The role of oxidative stress and NF‐κB activation in late diabetic complications , 1999, BioFactors.
[7] M. Martinetti,et al. "The sarcoidosis map": a joint survey of clinical and immunogenetic findings in two European countries. , 1995, American journal of respiratory and critical care medicine.
[8] B. Spiegelman,et al. Tumor necrosis factor alpha inhibits signaling from the insulin receptor. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[9] Joseph L Evans,et al. Oxidative stress and stress-activated signaling pathways: a unifying hypothesis of type 2 diabetes. , 2002, Endocrine reviews.
[10] G. Orozco,et al. Analysis of the functional NFKB1 promoter polymorphism in rheumatoid arthritis and systemic lupus erythematosus. , 2005, Tissue antigens.
[11] G. Hotamisligil,et al. Mechanisms of TNF-alpha-induced insulin resistance. , 2009 .
[12] O. Christiansen,et al. Studies on associations between human leukocyte antigen (HLA) class II alleles and antiphospholipid antibodies in Danish and Czech women with recurrent miscarriages. , 1998, Human reproduction.
[13] Joanne E Curran,et al. Polymorphic variants of NFKB1 and its inhibitory protein NFKBIA, and their involvement in sporadic breast cancer. , 2002, Cancer letters.
[14] A. Hevener,et al. IKK-β links inflammation to obesity-induced insulin resistance , 2005, Nature Medicine.
[15] N. Ruderman,et al. Lipid-Induced Insulin Resistance in Human Muscle Is Associated With Changes in Diacylglycerol, Protein Kinase C, and IκB-α , 2002 .
[16] P. Deloukas,et al. The complete exon-intron structure of the 156-kb human gene NFKB1, which encodes the p105 and p50 proteins of transcription factors NF-kappa B and I kappa B-gamma: implications for NF-kappa B-mediated signal transduction. , 1995, Genomics.
[17] P. Brunetti,et al. Association of MHC Class I chain-related A (MIC-A) gene polymorphism with Type I diabetes , 2000, Diabetologia.
[18] T. Nakajima,et al. Isolation and radiation hybrid mapping of a highly polymorphic CA repeat sequence at the human nuclear factor kappa-beta subunit 1 (NFKB1) locus , 1999, Journal of Human Genetics.
[19] S. Bain,et al. Genetics of diabetic nephropathy. , 2001, Best practice & research. Clinical endocrinology & metabolism.
[20] R. Ardaillou,et al. Reactive oxygen species: production and role in the kidney. , 1986, The American journal of physiology.
[21] S. Shoelson,et al. Local and systemic insulin resistance resulting from hepatic activation of IKK-β and NF-κB , 2005, Nature Medicine.
[22] F. Pociot,et al. Characterization of a nuclear-factor-kappa B (NFκB) genetic marker in type 1 diabetes (T1DM) families , 2002, Genes and Immunity.
[23] B. Isermann,et al. Peripheral blood mononuclear cells isolated from patients with diabetic nephropathy show increased activation of the oxidative-stress sensitive transcription factor NF-kB , 1999, Diabetologia.
[24] Fei Chen. Is NF-κB a culprit in type 2 diabetes? , 2005 .
[25] B. Millward,et al. NFκB Polymorphisms and susceptibility to type 1 diabetes , 2001, Genes and Immunity.
[26] E. Keller,et al. A model for the role of HLA-DQ molecules in the pathogenesis of juvenile chronic arthritis , 2004, Rheumatology International.
[27] E. Ivaskova,et al. Class I associations and frequencies of class II HLA-DRB alleles by RFLP analysis in children with rheumatoid-factor-negative juvenile chronic arthritis , 2004, Rheumatology International.
[28] Michael Karin,et al. The IκB kinase (IKK) and NF-κB: key elements of proinflammatory signalling , 2000 .