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碳氢链的粗粒化和饱和度对模拟脂质分子结构与动力学的影响

Effects of Coarse Graining and Saturation of Hydrocarbon Chains on Structure and Dynamics of Simulated Lipid Molecules.

作者信息

Buslaev Pavel, Gushchin Ivan

机构信息

Moscow Institute of Physics and Technology, 141700, Dolgoprudny, Russia.

Institute of Complex Systems (ICS), ICS-6: Structural Biochemistry, Research Centre Jülich, 52425, Jülich, Germany.

出版信息

Sci Rep. 2017 Sep 13;7(1):11476. doi: 10.1038/s41598-017-11761-5.

Abstract

Molecular dynamics simulations are used extensively to study the processes on biological membranes. The simulations can be conducted at different levels of resolution: all atom (AA), where all atomistic details are provided; united atom (UA), where hydrogen atoms are treated inseparably of corresponding heavy atoms; and coarse grained (CG), where atoms are grouped into larger particles. Here, we study the behavior of model bilayers consisting of saturated and unsaturated lipids DOPC, SOPC, OSPC and DSPC in simulations performed using all atom CHARMM36 and coarse grained Martini force fields. Using principal components analysis, we show that the structural and dynamical properties of the lipids are similar, both in AA and CG simulations, although the unsaturated molecules are more dynamic and favor more extended conformations. We find that CG simulations capture 75 to 100% of the major collective motions, overestimate short range ordering, result in more flexible molecules and 5-7 fold faster sampling. We expect that the results reported here will be useful for comprehensive quantitative comparisons of simulations conducted at different resolution levels and for further development and improvement of CG force fields.

摘要

分子动力学模拟被广泛用于研究生物膜上的过程。这些模拟可以在不同的分辨率水平上进行:全原子(AA)模拟,提供所有原子细节;联合原子(UA)模拟,氢原子与相应重原子不可分割地处理;粗粒度(CG)模拟,原子被分组为更大的粒子。在此,我们使用全原子CHARMM36和粗粒度Martini力场进行模拟,研究由饱和和不饱和脂质二油酰磷脂酰胆碱(DOPC)、1-硬脂酰-2-油酰磷脂酰胆碱(SOPC)、1-油酰-2-硬脂酰磷脂酰胆碱(OSPC)和二硬脂酰磷脂酰胆碱(DSPC)组成的模型双层的行为。使用主成分分析,我们表明,在AA和CG模拟中,脂质的结构和动力学性质相似,尽管不饱和分子更具动态性且更倾向于更伸展的构象。我们发现,CG模拟捕捉到75%至100%的主要集体运动,高估短程有序性,导致分子更灵活且采样速度快5至7倍。我们期望这里报告的结果将有助于对不同分辨率水平下进行的模拟进行全面定量比较,以及CG力场的进一步开发和改进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efa6/5597592/0c04c1cc02e8/41598_2017_11761_Fig1_HTML.jpg

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