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呼吸复合物 I 中氧化还原诱导构象变化的机械变构偶联。

Mechanical Allosteric Couplings of Redox-Induced Conformational Changes in Respiratory Complex I.

机构信息

Department of Chemistry, University of California at Davis, One Shields Avenue, Davis, California 95616, United States.

出版信息

J Phys Chem B. 2022 Jun 9;126(22):4080-4088. doi: 10.1021/acs.jpcb.2c00750. Epub 2022 May 25.

Abstract

We apply linear response theory to calculate mechanical allosteric couplings in respiratory complex I between the iron sulfur cluster N2, located in the catalytic cavity, and the membrane part of the enzyme, separated from it by more than 50 Å. According to our hypothesis, the redox reaction of ubiquinone in the catalytic cavity of the enzyme generates an unbalanced charge that via repulsion of the charged redox center N2 produces local mechanical stress that transmits into the membrane part of the enzyme where it induces proton pumping. Using coarse-grained simulations of the enzyme, we calculated mechanistic allosteric couplings that reveal the pathways of the mechanical transmission of the stress along the enzyme. The results shed light on the recent experimental studies where a stabilization of the enzyme with an introduced disulfide bridge resulted in the abolishing of proton pumping. Simulation of the disulfide bond action indicates a dramatic change of the mechanistic coupling pathways in line with experimental findings.

摘要

我们应用线性响应理论计算了位于催化腔中的铁硫簇 N2 与酶的膜部分之间的呼吸复合物 I 的机械变构耦合,它们之间的距离超过 50 Å。根据我们的假设,酶催化腔中泛醌的氧化还原反应产生不平衡电荷,通过排斥带电荷的氧化还原中心 N2 产生局部机械应力,该应力传递到酶的膜部分,在那里诱导质子泵。我们使用酶的粗粒模拟计算了机械变构耦合,这些耦合揭示了应力沿酶传递的途径。结果为最近的实验研究提供了线索,该研究表明,用引入的二硫键稳定酶会导致质子泵失活。二硫键作用的模拟表明,与实验结果一致,机械耦合途径发生了显著变化。

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