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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Efficient Construction of Mesostate Networks from Molecular Dynamics Trajectories
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Efficient Construction of Mesostate Networks from Molecular Dynamics Trajectories

机译:从分子动力学轨迹高效构造介观网络

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The coarse-graining of data from molecular simulations yields conformational space networks that may be used for predicting the system's long time scale behavior, to discover structural pathways connecting free energy basins in the system, or simply to represent accessible phase space regions of interest and their connectivities in a two-dimensional plot. In this contribution, we present a tree-based algorithm to partition conformations of biomolecules into sets of similar microstates, i.e., to coarse-grain trajectory data into mesostates. On account of utilizing an architecture similar to that of established tree-based algorithms, the proposed scheme operates in near-linear time with data set size. We derive expressions needed for the fast evaluation of mesostate properties and distances when employing typical choices for measures of similarity between microstates. Using both a pedagogically useful and a real-word application, the algorithm is shown to be robust with respect to tree height, which in addition to mesostate threshold size is the main adjustable parameter. It is demonstrated that the derived mesostate networks can preserve information regarding the free energy basins and barriers by which the system is characterized.
机译:来自分子模拟的数据的粗粒度产生构象空间网络,该构象空间网络可用于预测系统的长时间尺度行为,发现连接系统中自由能盆地的结构路径,或仅表示感兴趣的可访问相空间区域及其二维图中的连通性。在此贡献中,我们提出了一种基于树的算法,将生物分子的构型划分为相似微状态的集合,即将粗粒轨迹数据划分为中间状态。由于利用了与已建立的基于树的算法相似的体系结构,因此该方案在具有数据集大小的近线性时间内运行。当采用微状态之间相似性度量的典型选择时,我们得出快速评估介晶态性质和距离所需的表达式。通过使用在教学上有用的单词和实际单词应用程序,该算法显示出相对于树高的鲁棒性,树高除了中间状态阈值大小外,还是主要的可调参数。结果表明,导出的介观网络可以保留有关自由能盆地和屏障的信息,从而表征系统。

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