NO inhibits mitochondrial respiration by reacting with either the reduced or the oxidized binuclear site of cytochrome c oxidase, leading respectively to accumulation of cytochrome a32+-NO or cytochrome a33+-NO2- species. Exploiting the unique light sensitivity of the cytochrome a32+-NO, we show that under turnover conditions, depending on the cytochrome c2+ concentration, either the cytochrome a32+-NO or the nitrite-bound enzyme is formed. The predominance of one of the two inhibitory pathways depends on the occupancy of the turnover intermediates. In the dark, the respiration recovers at the rate of NO dissociation (k' = 0.01 s-1 at 37°C). Illumination of the sample speeds up recovery rate only at higher reductant concentrations, indicating that the inhibited species is cytochrome a32+-NO. When the reaction occurs with the oxidized binuclear site, light has no effect and NO is oxidized to harmless nitrite eventually released in the bulk, accounting for catalytic NO degradation. (C) 2000 Academic Press.

Nitric oxide and cytochrome c oxidase: Mechanisms of inhibition and NO degradation

Giuffrè A;
2000

Abstract

NO inhibits mitochondrial respiration by reacting with either the reduced or the oxidized binuclear site of cytochrome c oxidase, leading respectively to accumulation of cytochrome a32+-NO or cytochrome a33+-NO2- species. Exploiting the unique light sensitivity of the cytochrome a32+-NO, we show that under turnover conditions, depending on the cytochrome c2+ concentration, either the cytochrome a32+-NO or the nitrite-bound enzyme is formed. The predominance of one of the two inhibitory pathways depends on the occupancy of the turnover intermediates. In the dark, the respiration recovers at the rate of NO dissociation (k' = 0.01 s-1 at 37°C). Illumination of the sample speeds up recovery rate only at higher reductant concentrations, indicating that the inhibited species is cytochrome a32+-NO. When the reaction occurs with the oxidized binuclear site, light has no effect and NO is oxidized to harmless nitrite eventually released in the bulk, accounting for catalytic NO degradation. (C) 2000 Academic Press.
2000
Istituto di Biologia e Patologia Molecolari - IBPM
cytochrome c oxidase
nitric oxide
animal tissue
article
degradation
dissociation
enzyme inhibition
illumination
light dark cycle
mitochondrial respiration
nonhuman
priority journal
temperature
Animals
Binding Sites
Cattle
Electron Transport Complex IV
Horses
Kinetics
Light
Models
Chemical
Myocardium
Nitric Oxide
Oxygen Consumption
Protein Binding
Spectrophotometry
Time Factors
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/192329
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