Literature DB >> 1384465

Nitric oxide and cyclic GMP formation induced by interleukin 1 beta in islets of Langerhans. Evidence for an effector role of nitric oxide in islet dysfunction.

J A Corbett1, J L Wang, J H Hughes, B A Wolf, M A Sweetland, J R Lancaster, M L McDaniel.   

Abstract

Treatment of pancreatic islets with interleukin 1 (IL-1) results in a time-dependent inhibition of glucose-stimulated insulin secretion which has recently been demonstrated to be dependent on the metabolism of L-arginine to nitric oxide. In this report IL-1 beta is shown to induce the accumulation of cyclic GMP (cGMP) in a time-dependent fashion that mimics the time-dependent inhibition of insulin secretion by IL-1 beta. The accumulation of cGMP is dependent on nitric oxide synthase activity, since NG-monomethyl-L-arginine (a competitive inhibitor of nitric oxide synthase) prevents IL-1 beta-induced cGMP accumulation. cGMP formation and nitrite production induced by IL-1 beta pretreatment of islets are also blocked by the protein synthesis inhibitor, cycloheximide. The formation of cGMP does not appear to mediate the inhibitory effects of IL-1 beta on insulin secretion since a concentration of cycloheximide (1 microM) that blocks IL-1 beta-induced inhibition of glucose-stimulated insulin secretion and nitric oxide formation does not prevent cGMP accumulation, thus dissociating the two events. By using e.p.r. spectroscopy, IL-1 beta is shown to induce the formation of a g = 2.04 iron-nitrosyl feature in islets which is prevented by cycloheximide, demonstrating the requirement of protein synthesis for IL-1 beta-induced nitric oxide formation. Iron-nitrosyl complex-formation by islets confirms that IL-1 beta induces the generation of nitric oxide by islets, and provides evidence indicating that nitric oxide mediates destruction of iron-sulphur clusters of iron-containing enzymes. Consistent with the destruction of iron-sulphur centres is the finding that pretreatment of islets with IL-1 beta results in an approx. 60% inhibition of mitochondrial oxidation of D-glucose to CO2. Inhibition of islet glucose oxidation appears to be mediated by nitric oxide since both NMMA and cycloheximide prevent IL-1 beta-induced inhibition of glucose oxidation. These results show that IL-1 beta-induced nitric oxide formation parallels the ability of IL-1 beta to inhibit glucose-stimulated insulin secretion by islets, and that protein synthesis is required for IL-1 beta-induced nitric oxide formation. These results also suggest that nitric oxide mediates IL-1 beta-induced inhibitory effects on the pancreatic beta-cell by functioning as an effector molecule responsible for the destruction of iron-sulphur centres of iron-containing proteins, resulting in an impairment of mitochondrial function.

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Year:  1992        PMID: 1384465      PMCID: PMC1133148          DOI: 10.1042/bj2870229

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  27 in total

1.  Interleukin 1 inhibits insulin secretion from isolated rat pancreatic islets by a process that requires gene transcription and mRNA translation.

Authors:  J H Hughes; J R Colca; R A Easom; J Turk; M L McDaniel
Journal:  J Clin Invest       Date:  1990-09       Impact factor: 14.808

2.  Inhibition of insulin secretion by interleukin-1 beta and tumour necrosis factor-alpha via an L-arginine-dependent nitric oxide generating mechanism.

Authors:  C Southern; D Schulster; I C Green
Journal:  FEBS Lett       Date:  1990-12-10       Impact factor: 4.124

3.  Effect of cytochalasin B on hexose transport and glucose metabolism in pancreatic islets.

Authors:  M L McDaniel; S King; S Anderson; J Fink; P E Lacy
Journal:  Diabetologia       Date:  1974-08       Impact factor: 10.122

4.  Interleukin-1 induced impairment in pancreatic islet oxidative metabolism of glucose is potentiated by tumor necrosis factor.

Authors:  D L Eizirik
Journal:  Acta Endocrinol (Copenh)       Date:  1988-11

5.  Macrophage oxidation of L-arginine to nitrite and nitrate: nitric oxide is an intermediate.

Authors:  M A Marletta; P S Yoon; R Iyengar; C D Leaf; J S Wishnok
Journal:  Biochemistry       Date:  1988-11-29       Impact factor: 3.162

6.  Islet cytotoxicity of interleukin 1. Influence of culture conditions and islet donor characteristics.

Authors:  T Mandrup-Poulsen; G A Spinas; S J Prowse; B S Hansen; D W Jørgensen; K Bendtzen; J H Nielsen; J Nerup
Journal:  Diabetes       Date:  1987-05       Impact factor: 9.461

7.  Interleukin-1 beta-induced formation of EPR-detectable iron-nitrosyl complexes in islets of Langerhans. Role of nitric oxide in interleukin-1 beta-induced inhibition of insulin secretion.

Authors:  J A Corbett; J R Lancaster; M A Sweetland; M L McDaniel
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8.  Studies on the mechanisms causing inhibition of insulin secretion in rat pancreatic islets exposed to human interleukin-1 beta indicate a perturbation in the mitochondrial function.

Authors:  S Sandler; K Bendtzen; L A Borg; D L Eizirik; E Strandell; N Welsh
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9.  Macrophage cytotoxicity: role for L-arginine deiminase and imino nitrogen oxidation to nitrite.

Authors:  J B Hibbs; R R Taintor; Z Vavrin
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10.  The cell surface receptors for interleukin-1 alpha and interleukin-1 beta are identical.

Authors:  S K Dower; S R Kronheim; T P Hopp; M Cantrell; M Deeley; S Gillis; C S Henney; D L Urdal
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  39 in total

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2.  The Role of Metabolic Flexibility in the Regulation of the DNA Damage Response by Nitric Oxide.

Authors:  Bryndon J Oleson; Katarzyna A Broniowska; Chay Teng Yeo; Michael Flancher; Aaron Naatz; Neil Hogg; Vera L Tarakanova; John A Corbett
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3.  Mechanisms of beta-cell death in response to double-stranded (ds) RNA and interferon-gamma: dsRNA-dependent protein kinase apoptosis and nitric oxide-dependent necrosis.

Authors:  A L Scarim; M Arnush; L A Blair; J Concepcion; M R Heitmeier; D Scheuner; R J Kaufman; J Ryerse; R M Buller; J A Corbett
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4.  SET7/9 Enzyme Regulates Cytokine-induced Expression of Inducible Nitric-oxide Synthase through Methylation of Lysine 4 at Histone 3 in the Islet β Cell.

Authors:  Kyoko Fujimaki; Takeshi Ogihara; David L Morris; Hisanobu Oda; Hitoshi Iida; Yoshio Fujitani; Raghavendra G Mirmira; Carmella Evans-Molina; Hirotaka Watada
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5.  Regulation of iNOS gene transcription by IL-1β and IFN-γ requires a coactivator exchange mechanism.

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7.  A protective role for heme oxygenase-1 in INS-1 cells and rat islets that are exposed to high glucose conditions.

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8.  AMP-activated protein kinase attenuates nitric oxide-induced beta-cell death.

Authors:  Gordon P Meares; Katherine J Hughes; Kimberly F Jaimes; Alison S Salvatori; Christopher J Rhodes; John A Corbett
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9.  Interleukin-1 beta inhibition of insulin release in rat pancreatic islets: possible involvement of G-proteins in the signal transduction pathway.

Authors:  A M Rabuazzo; M Buscema; V Caltabiano; M Anello; C Degano; G Patanè; R Vigneri; F Purrello
Journal:  Diabetologia       Date:  1995-07       Impact factor: 10.122

10.  Interleukin 1 beta induces the formation of nitric oxide by beta-cells purified from rodent islets of Langerhans. Evidence for the beta-cell as a source and site of action of nitric oxide.

Authors:  J A Corbett; J L Wang; M A Sweetland; J R Lancaster; M L McDaniel
Journal:  J Clin Invest       Date:  1992-12       Impact factor: 14.808

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