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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Effects of protein-protein interactions on electron transfer: docking and electron transfer calculations for complexes between flavodoxin and c-type cytochromes
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Effects of protein-protein interactions on electron transfer: docking and electron transfer calculations for complexes between flavodoxin and c-type cytochromes

机译:蛋白质相互作用对电子转移的影响:黄素毒素与c型细胞色素复合物的对接和电子转移计算

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摘要

Theoretical studies of protein-protein association and electron transfer were performed on the binary systems formed by Desulfovibrio vulgaris Hildenborough (D. v. H.) flavodoxin and D. v. H. cytochrome c_(553) and by flavodoxin and horse heart cytochrome c. Initial structures for the complexes were obtained by rigid-body docking and were refined by MD to allow for molecular flexibility. The structures thus obtained were analysed in terms of their relative stability through the calculation of excess energies. Electrostatic, van der Waals and solvation energy terms showed all to have significant contributions to the stability of complexes. In the best association solutions found for both cytochromes, these bind to different zones of flavodoxin. The binding site of flavodoxin observed for cytochrome c is in accordance with earlier works [27]. The various association modes found were characterised in terms of electron transfer using the Pathways model. For complexes between flavodoxin and horse heart cytochrome c, some correlation was observed between electron tunnelling coupling factors and conformation energy; the best conformation found for electron transfer corresponded also to the best one in terms of energy. For complexes between flavodoxin and cytochrome c_(553) this was not the case and a lower correlation was observed between electron tunnelling coupling factors and excess energies. These results are in accordance with the differences in the experimental dependence of electron transfer rates with ionic strength observed between these two cases.
机译:对由Desulfovibrio vulgaris Hildenborough(D. v。H.)flavodoxin和D. v。H. cytochrome c_(553)以及flavodoxin和马心细胞色素c 。通过刚体对接获得复合物的初始结构,并通过MD对其进行精制以实现分子柔性。通过计算多余的能量,就获得的结构的相对稳定性进行了分析。静电,范德华力和溶剂化能项均显示出对配合物稳定性的重要贡献。在发现两种细胞色素的最佳关联溶液中,它们会结合到黄酮毒素的不同区域。在细胞色素c中观察到的黄酮毒素的结合位点与早期工作一致[27]。使用Pathways模型,根据电子转移表征了发现的各种缔合模式。对于黄酮毒素和马心脏细胞色素c之间的复合物,电子隧穿耦合因子与构象能之间存在一定的相关性。就电子转移而言,发现的最佳构象在能量方面也对应于最佳构象。对于黄素毒素和细胞色素c_(553)之间的复合物,情况并非如此,并且电子隧穿耦合因子与过量能量​​之间的相关性较低。这些结果是根据这两种情况下观察到的电子传输速率与离子强度的实验依赖性的差异而得出的。

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