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Structure and Dynamics of the Solvation of Bovine Pancreatic Trypsin Inhibitor in Explicit Water: A Comparative Study of the Effects of Solvent and Protein Polarizability

机译:牛胰胰蛋白酶抑制剂在显性水中溶解的结构和动力学:溶剂和蛋白质极化性影响的比较研究

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摘要

To isolate the effects of the inclusion of polarizability in the force field model on the structure and dynamics of the solvating water in differing electrostatic environments of proteins, we present the results of molecular dynamics simulations of the bovine pancreatic trypsin inhibitor (BPTI) in water with force fields that explicitly include polarization for both the protein and the water. We use three model potentials for water and two model potentials for the protein. Two of the water models and one of the protein models are polarizable. A total of six systems were simulated representing all combinations of these polarizable and nonpolarizable protein and water force fields. We find that all six systems behave in a similar manner in regions of the protein that are weakly electrostatic (either hydrophobic or weakly hydrophilic). However, in the vicinity of regions of the protein with relatively strong electrostatic fields (near positively or negatively charged residues), we observe that the water structure and dynamics are dependent on both the model of the protein and the model of the water. We find that a large part of the dynamical dependence can be described by small changes in the local environments of each region that limit the local density of non-hydrogen-bonded waters, precisely the water molecules that facilitate the dynamical relaxation of the water–water hydrogen bonds. We introduce a simple method for rescaling for this effect. When this is done, we are able to effectively isolate the influence of polarizability on the dynamics. We find that the solvating water’s relaxation is most affected when both the protein and the water models are polarizable. However, when only one model (or neither) is polarizable, the relaxation is similar regardless of the models used.
机译:为了隔离在力场模型中极化性包括在内对蛋白质在不同静电环境下溶剂化水的结构和动力学的影响,我们提出了牛胰胰蛋白酶抑制剂(BPTI)在水中的分子动力学模拟结果,力场明确包括蛋白质和水的极化。我们使用三种模型水势和两种模型蛋白质势。两种水模型和一种蛋白质模型是可极化的。总共模拟了六个系统,代表了这些可极化和不可极化的蛋白质和水力场的所有组合。我们发现,所有六个系统在弱静电蛋白区域(疏水性或弱亲水性)的行为均相似。但是,在具有较强静电场(接近带正电或带负电的残基)的蛋白质区域附近,我们观察到水的结构和动力学取决于蛋白质的模型和水的模型。我们发现,动力学依赖性的很大一部分可以用每个区域的局部环境的微小变化来描述,这些变化限制了非氢键结合水的局部密度,确切地说是促进水-水动态松弛的水分子。氢键。为此,我们介绍了一种简单的缩放方法。完成此操作后,我们就能有效地隔离极化率对动力学的影响。我们发现,当蛋白质和水模型都可极化时,溶剂化水的弛豫影响最大。但是,当只有一个模型(或没有一个模型)是可极化的时,无论使用哪种模型,弛豫都相似。

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