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Dewetting transitions coupled to K-channel activation in cytochrome c oxidase

机译:脱湿转变与细胞色素C氧化酶中的K通道激活相关

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摘要

Cytochrome c oxidase (CcO) drives aerobic respiratory chains in all organisms by transducing the free energy from oxygen reduction into an electrochemical proton gradient across a biological membrane. CcO employs the so-called D- and K-channels for proton uptake, but the molecular mechanism for activation of the K-channel has remained elusive for decades. We show here by combining large-scale atomistic molecular simulations with graph-theoretical water network analysis, and hybrid quantum/classical (QM/MM) free energy calculations, that the K-channel is activated by formation of a reactive oxidized intermediate in the binuclear heme a3/CuB active site. This state induces electrostatic, hydration, and conformational changes that lower the barrier for proton transfer along the K-channel by dewetting pathways that connect the D-channel with the active site. Our combined results reconcile previous experimental findings and indicate that water dynamics plays a decisive role in the proton pumping machinery in CcO.
机译:细胞色素c氧化酶(CcO)通过将氧气还原产生的自由能转换为跨生物膜的电化学质子梯度,从而驱动所有生物体中的需氧呼吸链。 CcO使用所谓的D通道和K通道来吸收质子,但是激活K通道的分子机制几十年来一直难以捉摸。我们在这里通过将大规模原子分子模拟与图论水网络分析以及混合量子/经典(QM / MM)自由能计算相结合,表明K通道通过在双核中形成反应性氧化中间体而被激活血红素a3 / CuB活动位点。这种状态会诱导静电,水合和构象变化,从而通过将D通道与活性位点连接的去湿途径降低质子沿着K通道传输的势垒。我们的综合结果与以前的实验结果一致,表明水动力学在CcO的质子泵送机械中起着决定性的作用。

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