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Milestoning without a Reaction Coordinate

机译:没有反应坐标的里程碑

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Milestoning is a method for calculating kinetics and thermodynamics of long time processes typically not accessible for straightforward Molecular Dynamics (MD) simulation. In the Milestoning approach, the system of interest is partitioned into cells by dividing hypersurfaces (Milestones) and transitions are computed between nearby hypersurfaces. Kinetics and thermodynamics are derived from the statistics of these transitions. The original Milestoning work concentrated on systems in which a one-dimensional reaction coordinate or an order parameter could be identified. In many biomolecular processes, the reaction proceeds via multiple channels or following more than a single-order parameter. A description based on a one-dimensional reaction coordinate may be insufficient. In the present paper, we introduce a variation that overcomes this limitation. Following the ideas of Vanden-Eijnden and Venturoli on Voronoi cells that avoid the use of an order parameter (J. Chem. Phys. 2009, 130,194101), we describe another way to "Milestone" systems without a reaction coordinate. We examine the assumptions of the Milestoning calculations of mean first passage times (MFPT) and describe strategies to weaken these assumptions. The method described in this paper, Directional Milestoning, arranges hypersurfaces in higher dimensions that 'lag" trajectories such that efficient calculations can be done and at the same time the assumptions required for exact calculations of MFPTs are satisfied approximately. In the original Milestoning papers, trajectories are initiated from an equilibrium set of conformations. Here a more accurate distribution, that mimics the first hitting point distribution, is used. We demonstrate the usage of Directional Milestoning in conformational transitions of alanine dipeptide (in vacuum and in aqueous solution) and compare the correctness, efficiency, and statistical stability of the method with exact MD and with a related method.
机译:Milestoning是一种计算长时间过程的动力学和热力学的方法,通常无法直接进行分子动力学(MD)模拟。在Milestoning方法中,通过划分超表面(里程碑)将感兴趣的系统划分为单元,并计算附近超表面之间的过渡。动力学和热力学是从这些转变的统计数据中得出的。最初的Milestoning工作集中在可以识别一维反应坐标或顺序参数的系统上。在许多生物分子过程中,反应通过多个通道进行,或遵循多个单级参数进行。基于一维反应坐标的描述可能不足。在本文中,我们介绍了一种克服此限制的变体。遵循Vanron-Eijnden和Venturoli在Voronoi细胞上避免使用有序参数的想法(J. Chem。Phys。2009,130,194101),我们描述了另一种无需反应坐标的“里程碑”系统的方法。我们研究了平均首次通过时间(MFPT)的Milestoning计算的假设,并描述了削弱这些假设的策略。本文描述的方法“定向Milestoning”在“滞后”轨迹的较高维度上排列超曲面,以便可以进行有效的计算,同时大致满足MFPT精确计算所需的假设。轨迹是从一组平衡构象开始的,此处使用了更精确的分布,该分布模仿了第一个击中点分布,我们证明了定向里程碑在丙氨酸二肽的构象转变(在真空和水溶液中)中的使用并进行了比较具有精确MD和相关方法的方法的正确性,效率和统计稳定性。

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