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使用多状态迭代玻尔兹曼反演和非连续分子动力学模拟开发用于二硬脂酰磷脂酰乙醇胺(DSPE)的粗粒度脂质模型LIME 2.0。

Development of a coarse-grained lipid model, LIME 2.0, for DSPE using multistate iterative Boltzmann inversion and discontinuous molecular dynamics simulations.

作者信息

Wang Kye Won, Wang Yiming, Hall Carol K

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina, 27695.

出版信息

Fluid Phase Equilib. 2020 Oct 15;521. doi: 10.1016/j.fluid.2020.112704. Epub 2020 Jun 13.

Abstract

We suggest an improved version of the intermediate resolution implicit solvent model for lipids, LIME, that was previously developed for use with discontinuous molecular dynamics (DMD) simulations. LIME gets its geometrical and the energy parameters between bonded and nonbonded pairs of coarse-grained (CG) sites from atomistic simulations. The improved model, LIME 2.0, uses multiple square wells rather than the single square well used in original LIME to obtain intermolecular interactions that more faithfully mimic those from atomistic simulations. The multi-state iterative Boltzmann inversion (MS-IBI) scheme is used to determine the interaction parameters. This means that a single set of interaction parameters between coarse-grained sites can be used to represent the lipid bilayers at different temperatures. The physical properties of CG DSPE lipid bilayer are calculated using CG simulations and compared to atomistic simulations results to verify the improved model. The phase transition temperature of the lipid bilayer is measured accurately and the lipid translocation phenomenon, " flip-flop" is observed through CG simulation. These results suggest that CG parameterization using multiple square-well and the MS-IBI scheme is well suited to the study of lipid bilayers cross a range of temperatures with DMD simulations.

摘要

我们提出了一种用于脂质的中等分辨率隐式溶剂模型的改进版本LIME 2.0,该模型先前是为与不连续分子动力学(DMD)模拟一起使用而开发的。LIME从原子模拟中获取粗粒度(CG)位点的键合和非键合对之间的几何和能量参数。改进后的模型LIME 2.0使用多个方阱而不是原始LIME中使用的单个方阱来获得更忠实地模拟原子模拟中的分子间相互作用。使用多状态迭代玻尔兹曼反演(MS-IBI)方案来确定相互作用参数。这意味着粗粒度位点之间的一组相互作用参数可用于表示不同温度下的脂质双层。使用CG模拟计算CG DSPE脂质双层的物理性质,并与原子模拟结果进行比较以验证改进后的模型。准确测量脂质双层的相变温度,并通过CG模拟观察脂质转运现象“翻转”。这些结果表明,使用多个方阱和MS-IBI方案的CG参数化非常适合通过DMD模拟研究一系列温度下的脂质双层。

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