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脂质双层分子动力学模拟的实验验证:一种新方法。

Experimental validation of molecular dynamics simulations of lipid bilayers: a new approach.

作者信息

Benz Ryan W, Castro-Román Francisco, Tobias Douglas J, White Stephen H

机构信息

Department of Chemistry, University of California, Irvine, California, USA.

出版信息

Biophys J. 2005 Feb;88(2):805-17. doi: 10.1529/biophysj.104.046821. Epub 2004 Nov 8.

Abstract

A novel protocol has been developed for comparing the structural properties of lipid bilayers determined by simulation with those determined by diffraction experiments, which makes it possible to test critically the ability of molecular dynamics simulations to reproduce experimental data. This model-independent method consists of analyzing data from molecular dynamics bilayer simulations in the same way as experimental data by determining the structure factors of the system and, via Fourier reconstruction, the overall transbilayer scattering-density profiles. Multi-nanosecond molecular dynamics simulations of a dioleoylphosphatidylcholine bilayer at 66% RH (5.4 waters/lipid) were performed in the constant pressure and temperature ensemble using the united-atom GROMACS and the all-atom CHARMM22/27 force fields with the GROMACS and NAMD software packages, respectively. The quality of the simulated bilayer structures was evaluated by comparing simulation with experimental results for bilayer thickness, area/lipid, individual molecular-component distributions, continuous and discrete structure factors, and overall scattering-density profiles. Neither the GROMACS nor the CHARMM22/27 simulations reproduced experimental data within experimental error. The widths of the simulated terminal methyl distributions showed a particularly strong disagreement with the experimentally observed distributions. A comparison of the older CHARMM22 with the newer CHARMM27 force fields shows that significant progress is being made in the development of atomic force fields for describing lipid bilayer systems empirically.

摘要

已经开发出一种新方案,用于比较通过模拟确定的脂质双层结构特性与通过衍射实验确定的结构特性,这使得严格测试分子动力学模拟再现实验数据的能力成为可能。这种与模型无关的方法包括以与实验数据相同的方式分析分子动力学双层模拟的数据,即通过确定系统的结构因子,并通过傅里叶重构得到整体跨双层散射密度分布。使用联合原子GROMACS和全原子CHARMM22/27力场,分别借助GROMACS和NAMD软件包,在恒压和恒温系综中对相对湿度66%(5.4个水分子/脂质)下的二油酰磷脂酰胆碱双层进行了多纳秒分子动力学模拟。通过将双层厚度、面积/脂质、单个分子成分分布、连续和离散结构因子以及整体散射密度分布的模拟结果与实验结果进行比较,评估了模拟双层结构的质量。无论是GROMACS模拟还是CHARMM22/27模拟,都未能在实验误差范围内再现实验数据。模拟的末端甲基分布宽度与实验观察到的分布存在特别明显的差异。将较旧的CHARMM22与较新的CHARMM27力场进行比较表明,在凭经验描述脂质双层系统的原子力场开发方面正在取得重大进展。

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