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PMID: 16481325 Published · ppublish English Journal Article

Persistent S-nitrosation of complex I and other mitochondrial membrane proteins by S-nitrosothiols but not nitric oxide or peroxynitrite: implications for the interaction of nitric oxide with mitochondria.

The Journal of biological chemistry ·Vol. 281 ·No. 15 ·2006-04-14 ·Pages 10056-65

Dahm CC, Moore K, Murphy MP

Abstract

S-nitrosation of mitochondrial proteins has been proposed to contribute to the pathophysiological interactions of nitric oxide (NO) and its derivatives with mitochondria but has not been shown directly. Furthermore, little is known about the mechanism of formation or the fate of these putative S-nitrosothiols. Here we have determined whether mitochondrial membrane protein thiols can be S-nitrosated on exposure to free NO from 3,3-bis(aminoethyl)-1-hydroxy-2-oxo-1-triazene (DETA-NONOate) by interaction with S-nitrosoglutathione or S-nitroso-N-acetylpenicillamine (SNAP) and by the NO derivative peroxynitrite. S-Nitrosation of protein thiols was measured directly by chemiluminescence detection. S-Nitrosoglutathione and S-nitroso-N-acetylpenicillamine led to extensive protein thiol oxidation, with about 30% of the modified protein thiols persistently S-nitrosated. In contrast, there was no protein thiol oxidation or S-nitrosation on exposure to 3,3-bis (aminoethyl)-1-hydroxy-2-oxo-1-triazene. Peroxynitrite extensively oxidized protein thiols but produced negligible amounts of S-nitrosothiols. Therefore, mitochondrial membrane protein thiols are S-nitrosated by preformed S-nitrosothiols but not by NO or by peroxynitrite. These S-nitrosated protein thiols were readily reduced by glutathione, so S-nitrosation will only persist when the mitochondrial glutathione pool is oxidized. Respiratory chain complex I was S-nitrosated by S-nitrosothiols, consistent with it being an important target for S-nitrosation during nitrosative stress. The S-nitrosation of complex I correlated with a significant loss of activity that was reversed by thiol reductants. S-Nitrosation was also associated with increased superoxide production from complex I. These findings point to a significant role for complex I S-nitrosation and consequent dysfunction during nitrosative stress in disorders such as Parkinson disease and sepsis.

MeSH Terms
Animals Disulfides/chemistry Dose-Response Relationship, Drug Electrophoresis, Polyacrylamide Gel Glutathione/metabolism Immunoblotting Intracellular Membranes/metabolism Liver/metabolism Mitochondria/metabolism Mitochondria, Liver/metabolism Models, Chemical Nitric Oxide/chemistry,metabolism Nitrosation Nitroso Compounds/chemistry Oxygen Consumption Parkinson Disease/metabolism Peroxynitrous Acid/chemistry Rats S-Nitroso-N-Acetylpenicillamine/chemistry S-Nitrosothiols/chemistry Sepsis Sulfhydryl Compounds/chemistry Superoxides/metabolism Time Factors
Chemicals
Disulfides Nitroso Compounds S-Nitrosothiols Sulfhydryl Compounds Superoxides 2,2'-(hydroxynitrosohydrazono)bis-ethanamine Peroxynitrous Acid Nitric Oxide S-Nitroso-N-Acetylpenicillamine Glutathione
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Dahm Christina C
Medical Research Council Dunn Human Nutrition Unit, Wellcome Trust/Medical Research Council Building, Hills Road, Cambridge CB2 2XY, United Kingdom.
Moore Kevin
Murphy Michael P
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2006-04-14
Epub
2006-00-14
Pages
10056-65
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
Grants
Medical Research Council · MC_U105663142 · United Kingdom
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