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Optimal use of data in parallel tempering simulations for the construction of discrete-state Markov models of biomolecular dynamics

机译:并行回火模拟中数据的最佳利用以构建生物分子动力学的离散状态马尔可夫模型

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摘要

Parallel tempering (PT) molecular dynamics simulations have been extensively investigated as a means of efficient sampling of the configurations of biomolecular systems. Recent work has demonstrated how the short physical trajectories generated in PT simulations of biomolecules can be used to construct the Markov models describing biomolecular dynamics at each simulated temperature. While this approach describes the temperature-dependent kinetics, it does not make optimal use of all available PT data, instead estimating the rates at a given temperature using only data from that temperature. This can be problematic, as some relevant transitions or states may not be sufficiently sampled at the temperature of interest, but might be readily sampled at nearby temperatures. Further, the comparison of temperature-dependent properties can suffer from the false assumption that data collected from different temperatures are uncorrelated. We propose here a strategy in which, by a simple modification of the PT protocol, the harvested trajectories can be reweighted, permitting data from all temperatures to contribute to the estimated kinetic model. The method reduces the statistical uncertainty in the kinetic model relative to the single temperature approach and provides estimates of transition probabilities even for transitions not observed at the temperature of interest. Further, the method allows the kinetics to be estimated at temperatures other than those at which simulations were run. We illustrate this method by applying it to the generation of a Markov model of the conformational dynamics of the solvated terminally blocked alanine peptide.
机译:平行回火(PT)分子动力学模拟已被广泛研究作为一种有效采样生物分子系统的配置的手段。最近的工作表明如何利用生物分子的PT模拟生成的短物理轨迹来构建描述每个模拟温度下的生物分子动力学的马尔可夫模型。尽管此方法描述了温度相关的动力学,但并未充分利用所有可用的PT数据,而是仅使用来自该温度的数据估算给定温度下的速率。这可能是有问题的,因为某些相关的跃迁或状态可能无法在目标温度下充分采样,但可能会在附近温度下轻松采样。此外,温度相关特性的比较可能会遭受错误的假设,即从不同温度收集的数据不相关。我们在这里提出一种策略,通过简单地修改PT协议,可以对收获的轨迹进行加权,从而允许来自所有温度的数据有助于估算的动力学模型。该方法相对于单一温度方法减少了动力学模型中的统计不确定性,即使在目标温度下未观察到跃迁,也可提供跃迁概率的估计。此外,该方法允许在不同于模拟运行温度的温度下估算动力学。我们通过将其应用于溶剂化的末端封闭的丙氨酸肽的构象动力学的马尔可夫模型的生成来说明该方法。

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