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生物分子动力学马尔可夫模型的统计模型选择

Statistical model selection for Markov models of biomolecular dynamics.

作者信息

McGibbon Robert T, Schwantes Christian R, Pande Vijay S

机构信息

Department of Chemistry, ‡Biophysics Program, §Department of Computer Science, and ∥Department of Structural Biology, Stanford University , Stanford, California 94305, United States.

出版信息

J Phys Chem B. 2014 Jun 19;118(24):6475-81. doi: 10.1021/jp411822r. Epub 2014 Apr 25.

Abstract

Markov state models provide a powerful framework for the analysis of biomolecular conformation dynamics in terms of their metastable states and transition rates. These models provide both a quantitative and comprehensible description of the long-time scale dynamics of large molecular dynamics with a Master equation and have been successfully used to study protein folding, protein conformational change, and protein-ligand binding. However, to achieve satisfactory performance, existing methodologies often require expert intervention when defining the model's discrete state space. While standard model selection methodologies focus on the minimization of systematic bias and disregard statistical error, we show that by consideration of the states' conditional distribution over conformations, both sources of error can be balanced evenhandedly. Application of techniques that consider both systematic bias and statistical error on two 100 μs molecular dynamics trajectories of the Fip35 WW domain shows agreement with existing techniques based on self-consistency of the model's relaxation time scales with more suitable results in regimes in which those time scale-based techniques encourage overfitting. By removing the need for expert tuning, these methods should reduce modeling bias and lower the barriers to entry in Markov state model construction.

摘要

马尔可夫状态模型为从亚稳态和跃迁速率的角度分析生物分子构象动力学提供了一个强大的框架。这些模型通过主方程对大分子动力学的长时间尺度动力学提供了定量且可理解的描述,并已成功用于研究蛋白质折叠、蛋白质构象变化和蛋白质-配体结合。然而,为了实现令人满意的性能,现有方法在定义模型的离散状态空间时通常需要专家干预。虽然标准的模型选择方法侧重于最小化系统偏差而忽略统计误差,但我们表明,通过考虑状态在构象上的条件分布,可以公平地平衡这两种误差来源。在Fip35 WW结构域的两条100微秒分子动力学轨迹上应用同时考虑系统偏差和统计误差的技术,结果表明,与基于模型弛豫时间尺度自洽性的现有技术一致,在那些基于时间尺度的技术容易导致过拟合的情况下能得到更合适的结果。通过消除对专家调优的需求,这些方法应能减少建模偏差并降低马尔可夫状态模型构建的入门门槛。

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