DIOXYGEN ACTIVATION AND BOND-CLEAVAGE BY MIXED-VALENCE CYTOCHROME-C-OXIDASE

Citation
Da. Proshlyakov et al., DIOXYGEN ACTIVATION AND BOND-CLEAVAGE BY MIXED-VALENCE CYTOCHROME-C-OXIDASE, Proceedings of the National Academy of Sciences of the United Statesof America, 95(14), 1998, pp. 8020-8025
Citations number
58
Categorie Soggetti
Multidisciplinary Sciences
ISSN journal
00278424
Volume
95
Issue
14
Year of publication
1998
Pages
8020 - 8025
Database
ISI
SICI code
0027-8424(1998)95:14<8020:DAABBM>2.0.ZU;2-#
Abstract
Elucidating the structures of intermediates in the reduction of O-2 to water by cytochrome c oxidase is crucial to understanding both oxygen activation and proton pumping by the enzyme. In the work here, the re action of O-2 with the mixed-valence enzyme, in which only heme a(3) a nd Cu-B in the binuclear center are reduced, has been followed by time -resolved resonance Raman spectroscopy. The results show that O=O bond cleavage occurs within the first 200 mu s after reaction initiation; the presence of a uniquely stable Fe-O-O(H) peroxy species is not dete cted. The product of this rapid reaction is a heme a(3) oxoferryl (Fe- IV=O) species, which requires that an electron donor in addition to he me a(3) and Cue must be involved. The available evidence suggests that the additional donor is an amino acid side chain. Recent crystallogra phic data [Yoshikawa, S,, Shinzawa-Itoh, K,, Nakashima, R, Yaono, R,, Yamashita, E,, Inoue, N,, Yao, M,, Fel, M, J,, Libeu, C, P,, Mizushima , T,, et nl. Science, in press; Ostermeier, C,, Harrenga, A, Ermler, U , & Michel, H, (1997) Proc. Natl. Acad. Sci. USA 94, 10547-10553] show that one of the Cu-B ligands, His240, is cross-linked to Tyr244 and t hat this cross-linked tyrosyl is ideally positioned to participate in dioxygen activation. We propose a mechanism for O-O bond cleavage that proceeds by concerted hydrogen atom transfer from the cross-linked Hi s-Tyr species to produce the product oxoferryl species, Cu-B(2+)-OH-, and the tyrosyl radical. This mechanism provides molecular structures for two key intermediates that drive the proton pump in oxidase; moreo ver, it has clear analogies to the proposed O-O bond forming chemistry that occurs during O-2 evolution in photosynthesis.