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探索蛋白质中的极性溶剂化动力学:分子动力学模拟分析

Probing polar solvation dynamics in proteins: a molecular dynamics simulation analysis.

作者信息

Golosov Andrei A, Karplus Martin

机构信息

Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA.

出版信息

J Phys Chem B. 2007 Feb 15;111(6):1482-90. doi: 10.1021/jp065493u. Epub 2007 Jan 24.

Abstract

Measurements of time-resolved Stokes shifts on picosecond to nanosecond time scales have been used to probe the polar solvation dynamics of biological systems. Since it is difficult to decompose the measurements into protein and solvent contributions, computer simulations are useful to aid in understanding the details of the molecular behavior. Here we report the analysis of simulations of the electrostatic interactions of the rest of the protein and the solvent with 11 residues of the immunoglobulin binding domain B1 of protein G. It is shown that the polar solvation dynamics are position-dependent and highly heterogeneous. The contributions due to interactions with the protein and with the solvent are determined. The solvent contributions are found to vary from negligible after a few picoseconds to dominant on a scale of hundreds of picoseconds. The origin for the latter is found to involve coupled hydration and protein conformational dynamics. The resulting microscopic picture demonstrates that a wide range of possibilities have to be considered in the interpretation of time-resolved Stokes shift measurements.

摘要

在皮秒到纳秒时间尺度上对时间分辨斯托克斯位移的测量已被用于探测生物系统的极性溶剂化动力学。由于难以将测量结果分解为蛋白质和溶剂的贡献,计算机模拟有助于理解分子行为的细节。在此,我们报告了对蛋白质G免疫球蛋白结合结构域B1的11个残基与蛋白质其余部分和溶剂之间静电相互作用的模拟分析。结果表明,极性溶剂化动力学与位置有关且高度不均匀。确定了与蛋白质和溶剂相互作用的贡献。发现溶剂的贡献从几皮秒后可忽略不计到在数百皮秒的尺度上占主导地位。发现后者的起源涉及耦合水合和蛋白质构象动力学。由此产生的微观图像表明,在解释时间分辨斯托克斯位移测量时必须考虑多种可能性。

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