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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Interfacial hydration, dynamics and electron transfer: multi-scale ET modeling of the transient [myoglobin, cytochrome b5] complex
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Interfacial hydration, dynamics and electron transfer: multi-scale ET modeling of the transient [myoglobin, cytochrome b5] complex

机译:界面水化,动力学和电子转移:瞬态[肌红蛋白,细胞色素b5]复合物的多尺度ET模拟

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摘要

Formation of a transient [myoglobin (Mb), cytochrome b5 (cyt b5)] complex is required for the reductive repair of inactive ferri-Mb to its functional ferro-Mb state. The [Mb, cyt b5] complex exhibits dynamic docking (DD), with its cyt b5 partner in rapid exchange at multiple sites on the Mb surface. A triple mutant (Mb(3M)) was designed as part of efforts to shift the electron-transfer process to the simple docking (SD) regime, in which reactive binding occurs at a restricted, reactive region on the Mb surface that dominates the docked ensemble. An electrostatically-guided Brownian dynamics (BD) docking protocol was used to generate an initial ensemble of reactive configurations of the complex between unrelaxed partners. This ensemble samples a broad and diverse array of heme-heme distances and orientations. These configurations seeded all-atom constrained molecular dynamics simulations (MD) to generate relaxed complexes for the calculation of electron tunneling matrix elements (T_(DA)) through tunneling-pathway analysis. This procedure for generating an ensemble of relaxed complexes combines the ability of BD calculations to sample the large variety of available conformations and interprotein distances, with the ability of MD to generate the atomic level information, especially regarding the structure of water molecules at the protein-protein interface, that defines electron-tunneling pathways. We used the calculated T_(DA) values to compute ET rates for the [Mb(wt), cyt bs] complex and for the complex with a mutant that has a binding free energy strengthened by three D/E → K charge-reversal mutations, [Mb(3M), cyt bs]. The calculated rate constants are in agreement with the measured values, and the mutant complex ensemble has many more geometries with higher T_(DA) values than does the wild-type Mb complex. Interestingly, water plays a double role in this electron-transfer system, lowering the tunneling barrier as well as inducing protein interface remodeling that screens the repulsion between the negatively-charged propionates of the two hemes.
机译:暂时性[肌红蛋白(Mb),细胞色素b5(cyt b5)]复合物的形成对于将非活性亚铁-Mb还原修复为其功能性铁-Mb状态是必需的。 [Mb,cyt b5]复合物表现出动态对接(DD),其cyt b5伴侣在Mb表面的多个位置快速交换。设计了三重突变体(Mb(3M)),作为将电子转移过程转移到简单对接(SD)方案的工作的一部分,其中反应性结合发生在主导对接的Mb表面上的受限反应区域合奏。静电引导的布朗动力学(BD)对接协议用于生成未放松的伙伴之间的复合物的反应性配置的初始集合。该合奏采样了各种各样的血红素-血红素距离和方向。这些构型注入了全原子约束的分子动力学模拟(MD),以生成松弛复合物,从而通过隧穿路径分析计算电子隧穿基质元素(T_(DA))。这种生成弛豫复合体的过程结合了BD计算能力,以采样各种可用构象和蛋白间距离,以及MD生成原子能级信息的能力,尤其是有关蛋白质中水分子结构的信息。蛋白质界面,定义电子隧穿路径。我们使用计算出的T_(DA)值来计算[Mb(wt),cyt bs]配合物和具有结合自由能的突变体的配合物的ET率,该结合能由三个D / E→K电荷反转突变增强,[Mb(3M),cyt bs]。计算出的速率常数与测量值一致,并且与野生型Mb配合物相比,突变体配合物集合具有更多的几何形状和更高的T_(DA)值。有趣的是,水在该电子转移系统中起着双重作用,降低了隧穿势垒,并诱导了蛋白质界面重塑,从而屏蔽了两个血红素带负电荷的丙酸酯之间的排斥。

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