Oxidation of nitroxyl anion to nitric oxide by copper ions
Open Access
- 1 September 2000
- journal article
- Published by Wiley in British Journal of Pharmacology
- Vol. 131 (2) , 356-362
- https://doi.org/10.1038/sj.bjp.0703550
Abstract
This study made use of a nitric oxide‐sensitive electrode to examine possible means of generating nitric oxide from nitroxyl anion (NO−) released upon the decomposition of Angeli's salt. Our results show that copper ions (from CuSO4) catalyze the rapid and efficient oxidation of nitroxyl to nitric oxide. Indeed, the concentrations of copper required to do so (0.1–100 μM) are roughly 100‐times lower than those required to generate equivalent amounts of nitric oxide from S‐nitroso‐N‐acetyl‐D,L‐penicillamine (SNAP). Experiments with ascorbate (1 mM), which reduces Cu2+ ions to Cu+, and with the Cu2+ chelators, EDTA and cuprizone, and the Cu+ chelator, neocuproine, each at 1 mM, suggest that the oxidation is catalyzed by copper ions in both valency states. Some compounds containing other transition metals, i.e. methaemoglobin, ferricytochrome c and Mn(III)TMPyP, were much less efficient than CuSO4 in catalyzing the formation of nitric oxide from nitroxyl, while FeSO4, FeCl3, MnCl2, and ZnSO4 were inactive. Of the copper containing enzymes examined, Cu‐Zn superoxide dismutase and ceruloplasmin were weak generators of nitric oxide from nitroxyl, even at concentrations (2500 and 30 u ml−1, respectively) vastly greater than are present endogenously. Two others, ascorbate oxidase (10 u ml−1) and tyrosinase (250 u ml−1) were inactive. Our findings suggest that a copper‐containing enzyme may be responsible for the rapid oxidation of nitroxyl to nitric oxide by cells, but the identity of such an enzyme remains elusive. British Journal of Pharmacology (2000) 131, 356–362; doi:10.1038/sj.bjp.0703550Keywords
This publication has 27 references indexed in Scilit:
- Azide binding to the trinuclear copper center in laccase and ascorbate oxidaseEuropean Journal of Biochemistry, 1999
- Biochemical Characterization ofS-NitrosohemoglobinJournal of Biological Chemistry, 1999
- Conversion of Nitroxyl (HNO) to Nitric Oxide (NO) in Biological Systems: The Role of Physiological Oxidants and Relevance to the Biological Activity of HNOBiochemical and Biophysical Research Communications, 1993
- Biochemistry of Nitric Oxide and Its Redox-Activated FormsScience, 1992
- The pharmacological activity of nitroxyl: a potent vasodilator with activity similar to nitric oxide and/or endothelium-derived relaxing factor.1992
- N,O-Diacylated-N-hydroxyarylsulfonamides: Nitroxyl precursors with potent smooth muscle relaxant propertiesBiochemical and Biophysical Research Communications, 1992
- Chemical oxidation of N-hydroxyguanidine compounds: Release of nitric oxide, nitroxyl and possible relationship to the mechanism of biological nitric oxide generationBiochemical Pharmacology, 1992
- Reversible conversion of nitroxyl anion to nitric oxide by superoxide dismutase.Proceedings of the National Academy of Sciences, 1991
- Isolation of nitric oxide synthetase, a calmodulin-requiring enzyme.Proceedings of the National Academy of Sciences, 1990
- BLOCKADE OF ENDOTHELIUM-DEPENDENT AND GLYCERYL TRINITRATE-INDUCED RELAXATION OF RABBIT AORTA BY CERTAIN FERROUS HEMOPROTEINS1985