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Oxygen Activation and Energy Conservation by Cytochrome c Oxidase

机译:细胞色素c氧化酶的氧活化和节能

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摘要

This review focuses on the type A cytochrome c oxidases (CcO), which are found in all mitochondria and also in several aerobic bacteria. CcO catalyzes the respiratory reduction of dioxygen (O2) to water by an intriguing mechanism, the details of which are fairly well understood today as a result of research for over four decades. Perhaps even more intriguingly, the membrane-bound CcO couples the O2 reduction chemistry to translocation of protons across the membrane, thus contributing to generation of the electrochemical proton gradient that is used to drive the synthesis of ATP as catalyzed by the rotary ATP synthase in the same membrane. After reviewing the structure of the core subunits of CcO, the active site, and the transfer paths of electrons, protons, oxygen, and water, we describe the states of the catalytic cycle and point out the few remaining uncertainties. Finally, we discuss the mechanism of proton translocation and the controversies in that area that still prevail.
机译:这篇综述着重于A型细胞色素C氧化酶(CcO),它存在于所有线粒体和好氧细菌中。 CcO通过一种有趣的机制催化将氧气中的氧气(O2)还原为呼吸,其经过20多年的研究如今已广为人知。也许更令人感兴趣的是,与膜结合的CcO将O2还原化学与质子在膜上的移位耦合,从而促进了电化学质子梯度的产生,该梯度被用于驱动ATP合成中的旋转ATP合酶催化。相同的膜在审查了CcO核心亚基的结构,活性位点以及电子,质子,氧和水的转移路径后,我们描述了催化循环的状态并指出了一些尚不确定的地方。最后,我们讨论了质子易位的机制以及该领域仍然存在的争议。

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