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细胞色素cbb3氧化酶中的动态水网络

Dynamic water networks in cytochrome cbb3 oxidase.

作者信息

Sharma Vivek, Wikström Mårten, Kaila Ville R I

机构信息

Helsinki Bioenergetics Group, Programme for Structural Biology and Biophysics, Institute of Biotechnology, PB 65 (Viikinkaari 1), University of Helsinki, 00014, Finland.

出版信息

Biochim Biophys Acta. 2012 May;1817(5):726-34. doi: 10.1016/j.bbabio.2011.09.010. Epub 2011 Sep 22.

Abstract

Heme-copper oxidases (HCOs) are terminal electron acceptors in aerobic respiration. They catalyze the reduction of molecular oxygen to water with concurrent pumping of protons across the mitochondrial and bacterial membranes. Protons required for oxygen reduction chemistry and pumping are transferred through proton uptake channels. Recently, the crystal structure of the first C-type member of the HCO superfamily was resolved [Buschmann et al. Science 329 (2010) 327-330], but crystallographic water molecules could not be identified. Here we have used molecular dynamics (MD) simulations, continuum electrostatic approaches, and quantum chemical cluster calculations to identify proton transfer pathways in cytochrome cbb(3). In MD simulations we observe formation of stable water chains that connect the highly conserved Glu323 residue on the proximal side of heme b(3) both with the N- and the P-sides of the membrane. We propose that such pathways could be utilized for redox-coupled proton pumping in the C-type oxidases. Electrostatics and quantum chemical calculations suggest an increased proton affinity of Glu323 upon reduction of high-spin heme b(3). Protonation of Glu323 provides a mechanism to tune the redox potential of heme b(3) with possible implications for proton pumping.

摘要

血红素-铜氧化酶(HCOs)是有氧呼吸中的终端电子受体。它们催化分子氧还原为水,同时将质子跨线粒体和细菌膜进行泵浦。氧还原化学过程和泵浦所需的质子通过质子摄取通道传递。最近,HCO超家族首个C型成员的晶体结构得到了解析[布施曼等人,《科学》329(2010)327 - 330],但无法识别晶体学水分子。在此,我们使用分子动力学(MD)模拟、连续静电学方法和量子化学簇计算来确定细胞色素cbb(3)中的质子转移途径。在MD模拟中,我们观察到形成了稳定的水链,其将血红素b(3)近端高度保守的Glu323残基与膜的N侧和P侧连接起来。我们提出,这样的途径可用于C型氧化酶中的氧化还原偶联质子泵浦。静电学和量子化学计算表明,高自旋血红素b(3)还原后Glu323的质子亲和力增加。Glu323的质子化提供了一种调节血红素b(3)氧化还原电位的机制,这可能对质子泵浦有影响。

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