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In-silico Assessment of Protein-Protein Electron Transfer. A Case Study: Cytochrome c Peroxidase – Cytochrome c

机译:蛋白质蛋白电子转移的计算机模拟评估。案例研究:细胞色素c过氧化物酶–细胞色素c

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摘要

The fast development of software and hardware is notably helping in closing the gap between macroscopic and microscopic data. Using a novel theoretical strategy combining molecular dynamics simulations, conformational clustering, ab-initio quantum mechanics and electronic coupling calculations, we show how computational methodologies are mature enough to provide accurate atomistic details into the mechanism of electron transfer (ET) processes in complex protein systems, known to be a significant challenge. We performed a quantitative study of the ET between Cytochrome c Peroxidase and its redox partner Cytochrome c. Our results confirm the ET mechanism as hole transfer (HT) through residues Ala194, Ala193, Gly192 and Trp191 of CcP. Furthermore, our findings indicate the fine evolution of the enzyme to approach an elevated turnover rate of 5.47×106 s−1 for the ET between Cytc and CcP through establishment of a localized bridge state in Trp191.
机译:软件和硬件的快速发展尤其有助于缩小宏观和微观数据之间的差距。使用结合分子动力学模拟,构象聚类,从头算量子力学和电子耦合计算的新颖理论策略,我们展示了计算方法如何成熟到足以为复杂蛋白质系统的电子转移(ET)过程机理提供准确的原子细节,这是一项重大挑战。我们对细胞色素c过氧化物酶与其氧化还原伴侣细胞色素c之间的ET进行了定量研究。我们的结果证实了ET机制是通过CcP的残基Ala194,Ala193,Gly192和Trp191进行的空穴转移(HT)。此外,我们的发现表明,通过建立一个Cytc和CcP之间的ET,该酶的精细进化可以达到5.47×10 6 s -1 的升高的周转率。 Trp191中的本地化桥接状态。

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