Mechanism of cytochrome c oxidase-catalyzed reduction of dioxygen to water: Evidence for peroxy and ferryl intermediates at room temperature

被引:76
作者
Sucheta, A [1 ]
Georgiadis, KE [1 ]
Einarsdottir, O [1 ]
机构
[1] UNIV CALIF SANTA CRUZ, DEPT CHEM & BIOCHEM, SANTA CRUZ, CA 95064 USA
关键词
D O I
10.1021/bi962422k
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The reaction between bovine heart cytochrome oxidase and dioxygen was investigated at room temperature following photolysis of the fully reduced GO-bound enzyme. Time-resolved optical absorption difference spectra were collected by a gated multichannel analyzer in the visible region (lambda = 460-720 nm) from 50 ns to 50 ms after photolysis. Singular value decomposition (SVD) analysis indicated the presence of at least seven intermediates. Multiexponential fitting gave the following apparent lifetimes: 1.2 mu s, 10 mu s, 25 mu s, 32 mu s, 86 mu s, and 1.3 ms. On the basis of the SVD results and a double difference map, a sequential kinetic mechanism is proposed from which the spectra and time-dependent populations of the reaction intermediates were determined. The ferrous-oxy complex (compound A), with a peak at 595 nm and a trough at 612 nm versus the reduced enzyme, reaches a maximum concentration similar to 30 mu s after photolysis. It decays to a 1:6 mixture of peroxy species (a(3)(3+)-O--O-) in which cytochrome a is reduced and oxidized. Cytochrome a(3) in both species has a peak at 606 nm versus its oxidized form. The peroxy species decay to a ferryl intermediate, with a peak at 578 nm versus the oxidized enzyme, followed by electron redistribution between Cu-A and cytochrome a. The two ferryl species reach a maximum concentration similar to 310 mu s after photolysis. The excellent agreement between the experimental and theoretical spectra of the intermediates provides unequivocal evidence for the presence of peroxy and ferryl species during dioxygen reduction by cytochrome oxidase at room temperature.
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页码:554 / 565
页数:12
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