Literature DB >> 9568691

Evidence for involvement of the proteasome complex (26S) and NFkappaB in IL-1beta-induced nitric oxide and prostaglandin production by rat islets and RINm5F cells.

G Kwon1, J A Corbett, S Hauser, J R Hill, J Turk, M L McDaniel.   

Abstract

Interleukin-1beta (IL-1beta) has been implicated as an effector molecule of beta-cell destruction in autoimmune diabetes. IL-1beta inhibits insulin secretion from pancreatic beta-cells by stimulating the expression of inducible nitric oxide synthase (iNOS) that generates the free radical nitric oxide. IL-1beta also induces the coexpression of the inducible isoform of cyclooxygenase (COX-2) that results in the overproduction of proinflammatory prostaglandins. The current studies were designed to characterize the involvement of protease(s) in the signaling pathway of IL-1beta-induced iNOS and COX-2 expression by rat islets and transformed rat pancreatic beta-cells. Because of the limitations of cell numbers of purified primary beta-cells obtained from rat islets, biochemical and molecular studies were performed using the rat insulinoma beta-cell line RINm5F. A serine protease inhibitor, Nalpha-P-tosyl-L-lysine chloromethyl ketone (TLCK), and a proteasome complex (26S) inhibitor, MG 132, inhibited IL-1beta-induced nitrite formation, an oxidation product of nitric oxide produced by iNOS, in a concentration-dependent manner, with complete inhibition observed at 100 micromol/l and 10 micromol/l, respectively. Both TLCK and MG 132 also inhibited iNOS gene expression at the level of mRNA and protein. In an analogous manner, TLCK (100 micromol/l) and MG 132 (10 micromol/l) inhibited IL-1beta-induced COX-2 enzyme activity (PGE2 formation) and COX-2 gene expression at the level of mRNA and protein. In human islets, the proteasome inhibitor MG 132 also inhibited the formation of the products of iNOS and COX-2 enzyme activity, nitrite, and PGE2, respectively. These findings suggest that the inhibitory action of TLCK and MG 132 on iNOS and COX-2 expression precedes transcription. The transcription factor NFkappaB is essential for activation of a number of cytokine-inducible enzymes and was evaluated as a possible site of protease action necessary for IL-1beta-induced coexpression of iNOS and COX-2. TLCK and MG 132 inhibited both IL-1beta-induced activation of NFkappaB and degradation of IkappaBalpha by islets and RINm5F cells. These results implicate protease activation as an early signaling event in IL-1beta-induced inhibition of beta-cell function. This study also suggests that IL-1beta-induced iNOS and COX-2 coexpression by pancreatic beta-cells share a common signaling pathway in utilizing the proteasome complex (26S) and the transcription factor NFkappaB, and it identifies sites of intervention to prevent the overproduction of their inflammatory products.

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Year:  1998        PMID: 9568691     DOI: 10.2337/diabetes.47.4.583

Source DB:  PubMed          Journal:  Diabetes        ISSN: 0012-1797            Impact factor:   9.461


  11 in total

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2.  NF-kappa B prevents beta cell death and autoimmune diabetes in NOD mice.

Authors:  Sunshin Kim; Isabelle Millet; Hun Sik Kim; Ja Young Kim; Myoung Sook Han; Moon-Kyu Lee; Kwang-Won Kim; Robert S Sherwin; Michael Karin; Myung-Shik Lee
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3.  Protection against cytokine toxicity through endoplasmic reticulum and mitochondrial stress prevention by prostacyclin synthase overexpression in insulin-producing cells.

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4.  Human Islet Expression Levels of Prostaglandin E2 Synthetic Enzymes, But Not Prostaglandin EP3 Receptor, Are Positively Correlated with Markers of β-Cell Function and Mass in Nondiabetic Obesity.

Authors:  Nathan A Truchan; Rachel J Fenske; Harpreet K Sandhu; Alicia M Weeks; Chinmai Patibandla; Benjamin Wancewicz; Samantha Pabich; Austin Reuter; Jeffrey M Harrington; Allison L Brill; Darby C Peter; Randall Nall; Michael Daniels; Margaret Punt; Cecilia E Kaiser; Elizabeth D Cox; Ying Ge; Dawn B Davis; Michelle E Kimple
Journal:  ACS Pharmacol Transl Sci       Date:  2021-06-16

5.  The immunoproteasome is induced by cytokines and regulates apoptosis in human islets.

Authors:  Morten Lundh; Marco Bugliani; Tina Dahlby; Danny Hung-Chieh Chou; Bridget Wagner; Seyed Mojtaba Ghiasi; Vincenzo De Tata; Zhifei Chen; Marianne Nissan Lund; Michael J Davies; Piero Marchetti; Thomas Mandrup-Poulsen
Journal:  J Endocrinol       Date:  2017-04-24       Impact factor: 4.286

6.  Cation-Independent Mannose 6-Phosphate Receptor Deficiency Enhances β-Cell Susceptibility to Palmitate.

Authors:  Aaron C Baldwin; Aaron Naatz; Richard N Bohnsack; Jacob T Bartosiak; Bryndon J Oleson; Polly A Hansen; Nancy M Dahms; John A Corbett
Journal:  Mol Cell Biol       Date:  2018-03-29       Impact factor: 4.272

7.  Human pancreatic duct cells can produce tumour necrosis factor-alpha that damages neighbouring beta cells and activates dendritic cells.

Authors:  B Movahedi; M Van de Casteele; N Caluwé; G Stangé; K Breckpot; K Thielemans; G Vreugdenhil; C Mathieu; D Pipeleers
Journal:  Diabetologia       Date:  2004-06-08       Impact factor: 10.122

8.  Cytokines in the Progression of Pancreatic β-Cell Dysfunction.

Authors:  Chunjiong Wang; Youfei Guan; Jichun Yang
Journal:  Int J Endocrinol       Date:  2010-11-14       Impact factor: 3.257

9.  Group VIB Phospholipase A(2) promotes proliferation of INS-1 insulinoma cells and attenuates lipid peroxidation and apoptosis induced by inflammatory cytokines and oxidant agents.

Authors:  Shunzhong Bao; Haowei Song; Min Tan; Mary Wohltmann; Jack H Ladenson; John Turk
Journal:  Oxid Med Cell Longev       Date:  2012-11-11       Impact factor: 6.543

10.  Resveratrol prevents interleukin-1β-induced dysfunction of pancreatic β-cells.

Authors:  Fang Chen; Xiaohua Zhou; Yan Lin; Changwen Jing; Tao Yang; Yong Ji; Yujie Sun; Xiao Han
Journal:  J Biomed Res       Date:  2010-09
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