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首页> 外文期刊>European Biophysics Journal >Solvating atomic level fine-grained proteins in supra-molecular level coarse-grained water for molecular dynamics simulations
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Solvating atomic level fine-grained proteins in supra-molecular level coarse-grained water for molecular dynamics simulations

机译:在分子水平的粗粒水中溶解原子级的细粒蛋白质,用于分子动力学模拟

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摘要

Simulation of the dynamics of a protein in aqueous solution using an atomic model for both the protein and the many water molecules is still computationally extremely demanding considering the time scale of protein motions. The use of supra-atomic or supra-molecular coarse-grained (CG) models may enhance the computational efficiency, but inevitably at the cost of reduced accuracy. Coarse-graining solvent degrees of freedom is likely to yield a favourable balance between reduced accuracy and enhanced computational speed. Here, the use of a supra-molecular coarse-grained water model that largely preserves the thermodynamic and dielectric properties of atomic level fine-grained (FG) water in molecular dynamics simulations of an atomic model for four proteins is investigated. The results of using an FG, a CG, an implicit, or a vacuum solvent environment of the four proteins are compared, and for hen egg-white lysozyme a comparison to NMR data is made. The mixed-grained simulations do not show large differences compared to the FG atomic level simulations, apart from an increased tendency to form hydrogen bonds between long side chains, which is due to the reduced ability of the supra-molecular CG beads that represent five FG water molecules to make solvent-protein hydrogen bonds. But, the mixed-grained simulations are at least an order of magnitude faster than the atomic level ones.
机译:考虑到蛋白质运动的时间尺度,使用针对蛋白质和许多水分子的原子模型来模拟水溶液中蛋白质的动力学仍然非常需要计算。超原子或超分子粗粒度(CG)模型的使用可以提高计算效率,但不可避免地会降低准确性。粗粒度的溶剂自由度可能会在降低的精度和提高的计算速度之间产生良好的平衡。在此,研究了在四个蛋白质的原子模型的分子动力学模拟中使用很大程度上保留原子级细粒(FG)水的热力学和介电特性的超分子粗粒水模型的用途。比较了使用四种蛋白质的FG,CG,隐式或真空溶剂环境的结果,并对蛋清溶菌酶进行了NMR数据比较。混合颗粒模拟与FG原子水平模拟相比没有显示出很大差异,除了在长侧链之间形成氢键的趋势增加外,这是由于代表五个FG的超分子CG珠的能力降低水分子形成溶剂-蛋白质氢键。但是,混合粒度模拟至少比原子级模拟快一个数量级。

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