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Multiscale Macromolecular Simulation: Role of Evolving Ensembles

机译:MultiSscale Macromolecular模拟:演变合奏的作用

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摘要

Multiscale analysis provides an algorithm for the efficient simulation of macromolecular assemblies. This algorithm involves the coevolution of a quasiequilibrium probability density of atomic configurations and the Langevin dynamics of spatial coarse-grained variables denoted order parameters (OPs) characterizing nanoscale system features. In practice, implementation of the probability density involves the generation of constant OP ensembles of atomic configurations. Such ensembles are used to construct thermal forces and diffusion factors that mediate the stochastic OP dynamics. Generation of all-atom ensembles at every Langevin timestep is computationally expensive. Here, multiscale computation for macromolecular systems is made more efficient by a method that self-consistently folds in ensembles of all-atom configurations constructed in an earlier step, history, of the Langevin evolution. This procedure accounts for the temporal evolution of these ensembles, accurately providing thermal forces and diffusions. It is shown that efficiency and accuracy of the OP-based simulations is increased via the integration of this historical information. Accuracy improves with the square root of the number of historical timesteps included in the calculation. As a result, CPU usage can be decreased by a factor of 3-8 without loss of accuracy. The algorithm is implemented into our existing force-field based multiscale simulation platform and demonstrated via the structural dynamics of viral capsomers.
机译:多尺度分析提供了一种用于高效模拟高分子组装的算法。此算法涉及原子构型的准平衡概率密度的共同演化和表示纳米级系统特征的表示顺序参数(OPs)的空间粗粒度变量的Langevin动力学。实际上,概率密度的实现涉及原子构型的恒定OP集合的生成。此类合奏用于构造介导随机OP动力学的热力和扩散因子。在每个Langevin时间步生成全原子合奏在计算上是昂贵的。在这里,大分子系统的多尺度计算可以通过一种方法来更有效地进行,该方法可以自如地折叠成在Langevin进化的早期历史中构建的所有原子构型的集合体。此过程说明了这些合奏的时间演变,准确地提供了热力和扩散。结果表明,通过集成这些历史信息,可以提高基于OP的仿真的效率和准确性。计算中包括的历史时间步数的平方根会提高准确性。结果,CPU使用率可以降低3-8倍,而不会降低精度。该算法已实施到我们现有的基于力场的多尺度仿真平台中,并通过病毒衣壳异构体的结构动力学进行了演示。

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