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Mitochondria generated nitric oxide protects against permeability transition via formation of membrane protein S-nitrosothiols
Authors:Ana Catarina R Leite  Helena CF Oliveira  Fabiane L Utino  Rafael Garcia  Luciane C Alberici  Mariana P Fernandes  Roger F Castilho  Aníbal E Vercesi
Institution:1. Departamento de Fisiologia e Biofísica, Universidade Estadual de Campinas, UNICAMP, Campinas, SP, Brazil;2. Departamento de Patologia Clínica, Universidade Estadual de Campinas, UNICAMP, Campinas, SP, Brazil
Abstract:Mitochondria generated nitric oxide (NOradical dot) regulates several cell functions including energy metabolism, cell cycling, and cell death. Here we report that the NOradical dot synthase inhibitors (L-NAME, L-NNA and L-NMMA) administered either in vitro or in vivo induce Ca2+-dependent mitochondrial permeability transition (MPT) in rat liver mitochondria via a mechanism independent on changes in the energy state of the organelle. MPT was determined by the occurrence of cyclosporin A sensitive mitochondrial membrane potential disruption followed by mitochondrial swelling and Ca2+ release. In in vitro experiments, the effect of NOS inhibitors was dose-dependent (1 to 50 µM). In addition to cyclosporin A, L-NAME-induced MPT was sensitive to Mg2+ plus ATP, EGTA, and to a lower degree, to catalase and dithiothreitol. In contrast to L-NAME, its isomer D-NAME did not induce MPT. L-NAME-induced MPT was associated with a significant decrease in both the rate of NOradical dot generation and the content of mitochondrial S-nitrosothiol. Acute and chronic in vivo treatment with L-NAME also promoted MPT and decreased the content of mitochondrial S-nitrosothiol. SNAP (a NOradical dot donor) prevented L-NAME mediated MPT and reversed the decrease in the rate of NOradical dot generation and in the content of S-nitrosothiol. We propose that S-nitrosylation of critical membrane protein thiols by NOradical dot protects against MPT.
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