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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Factors determining electrostatic fields in molecular dynamics simulations of the Ras/effector interface.
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Factors determining electrostatic fields in molecular dynamics simulations of the Ras/effector interface.

机译:Ras /效应子界面的分子动力学模拟中确定静电场的因素。

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摘要

Using molecular dynamics simulations, we explore geometric and physical factors contributing to calculated electrostatic fields at the binding surface of the GTPase Ras with a spectroscopically labeled variant of a downstream effector, the Ras-binding domain of Ral guanine nucleotide dissociation stimulator (RalGDS). A related system (differing by mutation of one amino acid) has been studied in our group using vibrational Stark effect spectroscopy, a technique sensitive to electrostatic fields. Electrostatic fields were computed using the AMBER 2003 force field and averaged over snapshots from molecular dynamics simulation. We investigate geometric factors by exploring how the orientation of the spectroscopic probe changes on Ras-effector binding. In addition, we explore the physical origin of electrostatic fields at our spectroscopic probe by comparing contributions to the field from discrete components of the system, such as explicit solvent, residues on the Ras surface, and residues on the RalGDS surface. These models support our experimental hypothesis that vibrational Stark shifts are caused by Ras binding to its effector and not the structural rearrangements of the effector surface or probe reorientation on Ras-effector binding, for at least some of our experimental probes. These calculations provide physical insight into the origin, magnitude, and importance of electrostatic fields in protein-protein interactions and suggest new experiments to probe the field's role in protein docking.
机译:使用分子动力学模拟,我们探索了几何和物理因素,这些因素有助于在GTPase Ras结合表面上的计算静电场,该效应是由光谱标记的下游效应子(Ral鸟嘌呤核苷酸解离刺激物(RalGDS)的Ras结合域)引起的。在我们的研究组中,使用了对静电场敏感的振动斯塔克效应光谱技术研究了一个相关的系统(通过一个氨基酸的突变而异)。静电场是使用AMBER 2003力场计算得出的,并通过分子动力学模拟对快照进行平均。我们通过探索光谱探针的方向如何改变Ras效应子结合来研究几何因素。此外,我们通过比较系统中离散成分对电场的贡献,例如显性溶剂,Ras表面上的残留物以及RalGDS表面上的残留物,来探索光谱探头上静电场的物理起源。这些模型支持我们的实验假设,对于至少某些实验探针,振动斯塔克位移是由Ras与其效应物的结合引起的,而不是效应器表面的结构重排或Ras-效应子结合时探针的取向改变所致。这些计算提供了对静电场在蛋白质-蛋白质相互作用中的起源,强度和重要性的物理洞察力,并提出了新的实验来探究电场在蛋白质对接中的作用。

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