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Monte Carlo simulations of proton pumps: On the working principles of the biological valve that controls proton pumping in cytochrome c oxidase

机译:质子泵的蒙特卡罗模拟:关于控制细胞色素c氧化酶中质子泵送的生物阀的工作原理

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摘要

Gaining a detailed understanding of the proton-pumping process in cytochrome c oxidase (COX) is one of the challenges of modern biophysics. Recent mutation experiments have highlighted this challenge by showing that a single mutation (the N139D mutation) blocks the overall pumping while continuing to channel protons to the binuclear center without inhibiting the oxidase activity. Rationalizing this result has been a major problem because the mutation is quite far from E286, which is believed to serve as the branching point for the proton transport in the pumping process. In the absence of a reasonable explanation for this important observation, we have developed a Monte Carlo simulation method that can convert mutation and structural information to pathways for proton translocation and simulate the pumping process in COX on a millisecond and even subsecond time scale. This tool allows us to reproduce and propose a possible explanation to the effect of the N139D mutation and to offer a consistent model for the origin of the “valve effect” in COX, which is crucial for maintaining uphill proton pumping. Furthermore, obtaining the first structure-based simulation of proton pumping in COX, or in any other protein, indicates that our approach should provide a powerful tool for verification of mechanistic hypotheses about the action of proton transport proteins.
机译:对细胞色素C氧化酶(COX)中质子泵过程的详细了解是现代生物物理学的挑战之一。最近的突变实验通过显示单个突变(N139D突变)阻止了整体泵浦,同时继续将质子引导到双核中心而不抑制氧化酶活性,凸显了这一挑战。使该结果合理化一直是一个主要问题,因为该突变距离E286相当远,据信E286是泵浦过程中质子运输的分支点。在没有对此重要观察结果做出合理解释的情况下,我们开发了一种蒙特卡洛模拟方法,该方法可以将突变和结构信息转换为质子易位的途径,并可以在毫秒甚至亚秒的时间范围内模拟COX中的泵送过程。该工具使我们能够重现N139D突变的影响并提出可能的解释,并为COX中“阀门效应”的起源提供一致的模型,这对于维持上坡质子泵送至关重要。此外,获得在COX或任何其他蛋白质中质子泵浦的第一个基于结构的模拟,表明我们的方法应该为验证有关质子转运蛋白作用的机制假设提供强大的工具。

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