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Surface residues dynamically organize water bridges to enhance electron transfer between proteins

机译:表面残留物动态组织水桥以增强蛋白质之间的电子转移

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摘要

Cellular energy production depends on electron transfer (ET) between proteins. In this theoretical study, we investigate the impact of structural and conformational variations on the electronic coupling between the redox proteins methylamine dehydrogenase and amicyanin from Paracoccus denitrificans. We used molecular dynamics simulations to generate configurations over a duration of 40 ns (sampled at 100-fs intervals) in conjunction with an ET pathway analysis to estimate the ET coupling strength of each configuration. In the wild-type complex, we find that the most frequently occurring molecular configurations afford superior electronic coupling due to the consistent presence of a water molecule hydrogen-bonded between the donor and acceptor sites. We attribute the persistence of this water bridge to a "molecular breakwater" composed of several hydrophobic residues surrounding the acceptor site. The breakwater supports the function of nearby solvent-organizing residues by limiting the exchange of water molecules between the sterically constrained ET region and the more turbulent surrounding bulk. When the breakwater is affected by a mutation, bulk solvent molecules disrupt the water bridge, resulting in reduced electronic coupling that is consistent with recent experimental findings. Our analysis suggests that, in addition to enabling the association and docking of the proteins, surface residues stabilize and control interprotein solvent dynamics in a concerted way.
机译:细胞产生的能量取决于蛋白质之间的电子转移(ET)。在这项理论研究中,我们研究了结构和构象变化对氧化还原蛋白甲胺脱氢酶与反硝化副球菌花青素之间电子耦合的影响。我们使用分子动力学模拟在40 ns的持续时间内生成构型(以100-fs的间隔进行采样),并结合ET路径分析来估计每种构型的ET耦合强度。在野生型复合物中,我们发现,由于在供体和受体位点之间始终存在氢键结合的水分子,因此最常见的分子构型提供了优异的电子偶联。我们将此水桥的持久性归因于“分子防波堤”,该防波堤由围绕受体位点的几个疏水残基组成。防波堤通过限制水分子在空间受限的ET区与周围湍流更大的主体之间的交换来支持附近的溶剂组织残基的功能。当防波堤受突变影响时,大量溶剂分子会破坏水桥,导致电子偶联减少,这与最近的实验结果一致。我们的分析表明,除了使蛋白质缔合和对接之外,表面残基还以协调的方式稳定并控制蛋白质间溶剂的动力学。

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  • 作者单位

    Department of Chemistry, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Biocomplexity and Informatics, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4;

    rnDepartment of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Quantum Information Science, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4;

    rnDepartment of Chemistry, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Biocomplexity and Informatics, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4;

    rnDepartment of Physics and Astronomy, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Quantum Information Science, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4;

    rnDepartment of Chemistry, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Biocomplexity and Informatics, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4 Institute for Sustainable Energy, Environment and Economy, University of Calgary, 2500 University Drive NW, Calgary, Alberta, Canada, T2N 1N4;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    respiratory chain; Marcus theory; pathway model; dynamic docking; blue copper proteins;

    机译:呼吸链马库斯理论;通路模型动态对接;蓝铜蛋白;
  • 入库时间 2022-08-18 00:41:21

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