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采用自适应分辨率方案的力探针模拟。

Force probe simulations using an adaptive resolution scheme.

机构信息

Department Chemie, Johannes Gutenberg-Universität Mainz, Duesbergweg 10-14, 55128 Mainz, Germany.

出版信息

J Phys Condens Matter. 2021 Apr 26;33(19). doi: 10.1088/1361-648X/abed18.

DOI:10.1088/1361-648X/abed18
PMID:33690183
Abstract

Molecular simulations of the forced unfolding and refolding of biomolecules or molecular complexes allow to gain important kinetic, structural and thermodynamic information about the folding process and the underlying energy landscape. In force probe molecular dynamics (FPMD) simulations, one pulls one end of the molecule with a constant velocity in order to induce the relevant conformational transitions. Since the extended configuration of the system has to fit into the simulation box together with the solvent such simulations are very time consuming. Here, we apply a hybrid scheme in which the solute is treated with atomistic resolution and the solvent molecules far away from the solute are described in a coarse-grained manner. We use the adaptive resolution scheme (AdResS) that has very successfully been applied to various examples of equilibrium simulations. We perform FPMD simulations using AdResS on a well studied system, a dimer formed from mechanically interlocked calixarene capsules. The results of the multiscale simulations are compared to all-atom simulations of the identical system and we observe that the size of the region in which atomistic resolution is required depends on the pulling velocity, i.e. the particular non-equilibrium situation. For large pulling velocities a larger all atom region is required. Our results show that multiscale simulations can be applied also in the strong non-equilibrium situations that the system experiences in FPMD simulations.

摘要

生物分子或分子复合物的强制展开和折叠的分子模拟允许获得有关折叠过程和基础能量景观的重要动力学、结构和热力学信息。在力探针分子动力学(FPMD)模拟中,以恒定速度拉动分子的一端,以诱导相关的构象转变。由于系统的扩展构象必须与溶剂一起装入模拟盒中,因此这些模拟非常耗时。在这里,我们应用一种混合方案,其中溶质以原子分辨率处理,而远离溶质的溶剂分子以粗粒化方式描述。我们使用自适应分辨率方案(AdResS),该方案已成功应用于各种平衡模拟示例。我们在一个经过充分研究的系统上使用 AdResS 进行 FPMD 模拟,该系统由机械互锁杯芳烃胶囊形成的二聚体。多尺度模拟的结果与相同系统的全原子模拟进行了比较,我们观察到需要原子分辨率的区域的大小取决于拉伸速度,即特定的非平衡情况。对于较大的拉伸速度,需要更大的全原子区域。我们的结果表明,多尺度模拟也可以应用于系统在 FPMD 模拟中经历的强非平衡情况。

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