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Molecular Basis of Coupled Protein and Electron Transfer Dynamics of Cytochrome c in Biomimetic Complexes

机译:仿生复合物中细胞色素c的耦合蛋白分子基础和电子转移动力学

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摘要

Direct electron transfer (ET) of redox proteins immobilized on biomimetic or biocompatible electrodes represents an active field of fundamental and applied research. In this context, several groups have reported for a variety of proteins unexpected distance dependencies of the ET rate, whose origin remains largely speculative and controversial, but appears to be a quite general phenomenon. Here we have employed molecular dynamics (MD) simulations and electron pathway analyses to study the ET properties of cytochrome c (Cyt) electrostatically immobilized on Au coated by carboxyl-terminated alkylthiols. The MD simulations and concomitant binding energy calculations allow identification of preferred binding configurations of the oxidized and reduced Cyt which are established via different lysine residues and, thus, correspond to different orientations and dipole moments. Calculations of the electronic coupling matrices for the various Cyt/self-assembled monolayer (SAM) complexes indicate that the thermodynamically preferred protein orientations do not coincide with the orientations of optimum coupling. These findings demonstrate that the ET of the immobilized Cyt is controlled by an interplay between protein dynamics and tunneling probabilities. Protein dynamics exerts two level of tuning on the electronic coupling via reorientation (coarse) and low amplitude thermal fluctuations (fine). Upon operating the Au support as an electrode, electric-field-dependent alignment of the protein dipole moment becomes an additional determinant for the protein dynamics and thus for the overall ET rate. The present results provide a consistent molecular description of previous (spectro)electrochemical data and allow conclusions concerning the coupling of protein dynamics and ET of Cyt in physiological complexes.
机译:固定在仿生或生物相容性电极上的氧化还原蛋白的直接电子转移(ET)代表了基础研究和应用研究的活跃领域。在这种情况下,一些研究小组报告了多种蛋白质对ET速率的意想不到的距离依赖性,其起源在很大程度上仍是推测性和争议性的,但似乎是一种相当普遍的现象。在这里,我们已经使用分子动力学(MD)模拟和电子途径分析来研究静电固定在被羧基封端的烷基硫醇包被的Au上的细胞色素c(Cyt)的ET特性。 MD模拟和伴随的结合能计算允许鉴定氧化的和还原的Cyt的优选结合构型,其优选通过不同的赖氨酸残基建立,并因此对应于不同的取向和偶极矩。对各种Cyt /自组装单层(SAM)配合物的电子耦合矩阵的计算表明,热力学上优选的蛋白质方向与最佳偶联的方向不一致。这些发现表明,固定化Cyt的ET由蛋白质动力学和隧穿概率之间的相互作用控制。蛋白质动力学通过重新定向(粗)和低振幅热波动(精细)在电子耦合上施加两个级别的调节。通过将Au载体用作电极,蛋白质偶极矩的电场依赖性排列成为决定蛋白质动力学进而决定总ET速率的一个决定因素。目前的结果提供了以前的(光谱)电化学数据的一致的分子描述,并得出有关蛋白质动力学和生理复合物中Cyt ET耦合的结论。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第16期|p.5769-5778|共10页
  • 作者单位

    Departamento de Quimica Inorganica, Analitica y Quimica Fisica/INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, piso 1, C1428EHA-Buenos Aires, Argentina;

    Departamento de Quimica Inorganica, Analitica y Quimica Fisica/INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, piso 1, C1428EHA-Buenos Aires, Argentina;

    Departamento de Quimica Inorganica, Analitica y Quimica Fisica/INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, piso 1, C1428EHA-Buenos Aires, Argentina;

    Technische Universitaet Berlin, Institut fuer Chemie, Strasse des 17. Juni 135, Sekr. PCM, D-10623-Berlin, Germany;

    Departamento de Quimica Inorganica, Analitica y Quimica Fisica/INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, piso 1, C1428EHA-Buenos Aires, Argentina;

    Departamento de Quimica Inorganica, Analitica y Quimica Fisica/INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Ciudad Universitaria, Pab. 2, piso 1, C1428EHA-Buenos Aires, Argentina;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:15:33

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