Pathways of cytochrome c oxidation by soluble and membrane-bound cytochrome aa3
- 1 October 1980
- journal article
- research article
- Published by Canadian Science Publishing in Canadian Journal of Biochemistry
- Vol. 58 (10) , 969-977
- https://doi.org/10.1139/o80-132
Abstract
In media of low ionic strength, membraneous [beef heart] cytochrome c oxidase, isolated cytochrome c oxidase, and proteoliposomal cytochrome c oxidase each bind cytochrome c at 2 sites, one of low affinity (1 .mu.M > Kd'' > 0.2 .mu.M) and readily reversible and the other of high affinity (0.01 .mu.M > Kd) and weakly reversible. When cytochrome c occupies both sites, including the low affinity site, the maximal turnover measured polarographically with ascorbate and N,N,N'',N''-tetramethyl-p-phenylenediamine (TMPD) is independent of TMPD concentration, and lies between 250 and 400 s-1 (30.degree. C, pH 7.4) for fully activated systems. The apparent affinity of the enzyme for cytochrome c is TMPD dependent. When cytochrome c occupies only the high-affinity site, the maximal turnover is closely dependent upon the concentration of TMPD, which, unlike ascorbate, can reduce bound cytochrome c. As TMPD concentration is increased, the maximal turnover approaches that seen when both sites are occupied. The lower activity of isolated cytochrome aa3 is due to the presence of inactive or inaccessible enzyme molecules. Incorporation of isolated enzyme into phospholipid vesicles restores full activity to all the subsequently accessible cytochrome aa3 molecules. Negatively charged (asolectin) vesicles show a higher cytochrome c affinity at the low-affinity sites than the other enzyme preparations. A model for the cytochrome c-cytochrome aa3 complexes is put forward in which both sites, when occupied, are fully catalytically competent, but in which occupation of the tight site by a catalytically functional cytochrome c molecule is required for overall oxidation of cytochrome c via the loose site.This publication has 17 references indexed in Scilit:
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