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Proton translocation in cytochrome c oxidase: Insights from proton exchange kinetics and vibrational spectroscopy

期刊

BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS
卷 1847, 期 1, 页码 98-108

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.bbabio.2014.09.008

关键词

Raman spectroscopy; Proton translocation; Cytochrome oxidase; Vibrational spectroscopy; Heme

资金

  1. National Institutes of Health [GM098799, GM086482]

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Cytochrome c oxidase is the terminal enzyme in the electron transfer chain. It reduces oxygen to water and harnesses the released energy to translocate protons across the inner mitochondrial membrane. The mechanism by which the oxygen chemistry is coupled to proton translocation is not yet resolved owing to the difficulty of monitoring dynamic proton transfer events. Here we summarize several postulated mechanisms for proton translocation, which have been supported by a variety of vibrational spectroscopic studies. We recently proposed a proton translocation model involving proton accessibility to the regions near the propionate groups of the heme a and heme a(3) redox centers of the enzyme based by hydrogen/deuterium (HID) exchange Raman scattering studies (Egawa et al., PLoS ONE 2013). To advance our understanding of this model and to refine the proton accessibility to the hemes, the HID exchange dependence of the heme propionate group vibrational modes on temperature and pH was measured. The HID exchange detected at the propionate groups of heme a3 takes place within a few seconds under all conditions. In contrast, that detected at the heme a propionates occurs in the oxidized but not the reduced enzyme and the H/D exchange is pH-dependent with a pK(a) of similar to 8.0 (faster at high pH). Analysis of the thermodynamic parameters revealed that, as the pH is varied, entropy/enthalpy compensation held the free energy of activation in a narrow range. The redox dependence of the possible proton pathways to the heme groups is discussed. This article is part of a Special Issue entitled: Vibrational spectroscopies and bioenergetic systems. (C) 2014 Elsevier B.V. All rights reserved.

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