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Coarse-Grained Biomolecular Simulation with REACH: Realistic Extension Algorithm via Covariance Hessian

机译:使用REACH的粗粒生物分子模拟:通过协方差Hessian的现实扩展算法

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摘要

Coarse-graining of protein interactions provides a means of simulating large biological systems. Here, a coarse-graining method, REACH, is introduced, in which the force constants of a residue-scale elastic network model are calculated from the variance-covariance matrix obtained from atomistic molecular dynamics (MD) simulation. In test calculations, the Cα-atoms variance-covariance matrices are calculated from the ensembles of 1-ns atomistic MD trajectories in monomeric and dimeric myoglobin, and used to derive coarse-grained force constants for the local and nonbonded interactions. Construction of analytical model functions of the distance-dependence of the interresidue force constants allows rapid calculation of the REACH normal modes. The model force constants from monomeric and dimeric myoglobin are found to be similar in magnitude to each other. The MD intra- and intermolecular mean-square fluctuations and the vibrational density of states are well reproduced by the residue-scale REACH normal modes without requiring rescaling of the force constant parameters. The temperature-dependence of the myoglobin REACH force constants reveals that the dynamical transition in protein internal fluctuations arises principally from softening of the elasticity in the nonlocal interactions. The REACH method is found to be a reliable way of determining spatiotemporal protein motion without the need for expensive computations of long atomistic MD simulations.
机译:蛋白质相互作用的粗粒度提供了一种模拟大型生物系统的方法。在这里,介绍了一种粗粒度方法,即REACH,其中根据从原子分子动力学(MD)模拟获得的方差-协方差矩阵,计算残基规模弹性网络模型的力常数。在测试计算中,Cα原子方差-协方差矩阵是根据单体和二聚体肌红蛋白中1 ns原子MD轨迹的集合计算得出的,并用于得出局部和非键相互作用的粗粒度力常数。残余力常数的距离相关性的解析模型函数的构建允许快速计算REACH正常模式。发现来自单体和二聚体肌红蛋白的模型力常数在大小上彼此相似。 MD分子内和分子间均方波动以及状态的振动密度可以通过残基规模REACH正常模式很好地再现,而无需重新调整力常数参数。肌红蛋白REACH力常数的温度依赖性表明,蛋白质内部波动的动态转变主要是由非局部相互作用中的弹性减弱引起的。发现REACH方法是确定时空蛋白质运动的可靠方法,而无需进行长原子MD模拟的昂贵计算。

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