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Scrutinizing Molecular Mechanics Force Fields on the Submicrosecond Timescale with NMR Data

机译:使用NMR数据仔细检查亚微秒时标上的分子力学力场

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摘要

Protein dynamics on the atomic level and on the microsecond timescale has recently become accessible from both computation and experiment. To validate molecular dynamics (MD) at the submicrosecond timescale against experiment we present microsecond MD simulations in 10 different force-field configurations for two globular proteins, ubiquitin and the gb3 domain of protein G, for which extensive NMR data is available. We find that the reproduction of the measured NMR data strongly depends on the chosen force field and electrostatics treatment. Generally, particle-mesh Ewald outperforms cut-off and reaction-field approaches. A comparison to measured J-couplings across hydrogen bonds suggests that there is room for improvement in the force-field description of hydrogen bonds in most modern force fields. Our results show that with current force fields, simulations beyond hundreds of nanoseconds run an increased risk of undergoing transitions to nonnative conformational states or will persist within states of high free energy for too long, thus skewing the obtained population frequencies. Only for the AMBER99sb force field have such transitions not been observed. Thus, our results have significance for the interpretation of data obtained with long MD simulations, for the selection of force fields for MD studies and for force-field development. We hope that this comprehensive benchmark based on NMR data applied to many popular MD force fields will serve as a useful resource to the MD community. Finally, we find that for gb3, the force-field AMBER99sb reaches comparable accuracy in back-calculated residual dipolar couplings and J-couplings across hydrogen bonds to ensembles obtained by refinement against NMR data.
机译:原子级和微秒级的蛋白质动力学最近已从计算和实验中获得。为了验证相对于实验的亚微秒级的分子动力学(MD),我们针对两种球形蛋白,泛素和蛋白G的gb3域提供了10种不同力场配置的微秒MD模拟,可提供大量NMR数据。我们发现,所测NMR数据的再现性在很大程度上取决于所选的力场和静电处理。通常,粒子网状的Ewald优于截断法和反应场法。与跨氢键测量的J耦合的比较表明,在大多数现代力场中,氢键的力场描述仍有改进的空间。我们的结果表明,在当前力场的情况下,超过数百纳秒的模拟运行到非天然构象状态的风险增加,或者在高自由能状态下持续的时间过长,从而使获得的总体频率发生倾斜。仅对于AMBER99sb力场,未观察到这种过渡。因此,我们的结果对于长时间MD模拟获得的数据的解释,MD研究的力场选择和力场发展具有重要意义。我们希望这一基于NMR数据的综合基准适用于许多流行的MD力场,将为MD界提供有用的资源。最后,我们发现对于gb3,力场AMBER99sb在反算的残留偶极偶合和跨氢键的J偶合上达到了可比较的精度,这些分子是通过对NMR数据进行细化获得的。

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