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WExplore: Hierarchical Exploration of High-Dimensional Spaces Using the Weighted Ensemble Algorithm

机译:WExplore:使用加权集合算法对高维空间进行分层探索

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摘要

As most relevant motions in biomolecular systems are inaccessible to conventional molecular dynamics simulations, algorithms that enhance sampling of rare events are indispensable. Increasing interest in intrinsically disordered systems and the desire to target ensembles of protein conformations (rather than single structures) in drug development motivate the need for enhanced sampling algorithms that are not limited to “two-basin” problems, and can efficiently determine structural ensembles. For systems that are not well-studied, this must often be done with little or no information about the dynamics of interest. Here we present a novel strategy to determine structural ensembles that uses dynamically defined sampling regions that are organized in a hierarchical framework. It is based on the weighted ensemble algorithm, where an ensemble of copies of the system (“replicas”) is directed to new regions of configuration space through merging and cloning operations. The sampling hierarchy allows for a large number of regions to be defined, while using only a small number of replicas that can be balanced over multiple length scales. We demonstrate this algorithm on two model systems that are analytically solvable and examine the 10-residue peptide chignolin in explicit solvent. The latter system is analyzed using a configuration space network and novel hydrogen bonds are found that facilitate folding.
机译:由于常规分子动力学模拟无法获得生物分子系统中最重要的运动,因此增强稀有事件采样的算法必不可少。对内在无序系统的兴趣不断增长,并且在药物开发中以蛋白质构象(而不是单一结构)为目标的合意的需求激发了对增强采样算法的需求,这些算法不仅限于“两元”问题,而且可以有效地确定结构合奏。对于未充分研究的系统,通常必须在很少或没有关于感兴趣动态的信息的情况下进行。在这里,我们提出了一种新颖的策略来确定使用动态定义的采样区域(在层次结构框架中组织)的结构集合体。它基于加权集成算法,其中系统副本(“副本”)的副本通过合并和克隆操作被定向到配置空间的新区域。采样层次结构允许定义大量区域,同时仅使用少量可以在多个长度范围内平衡的副本。我们在两个可解析解决的模型系统上论证了该算法,并在显式溶剂中检查了10个残基的肽厚朴素。使用构型空间网络分析了后者,发现了新的氢键,有利于折叠。

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