膜
微尺度化学
介观物理学
材料科学
化学物理
耗散颗粒动力学模拟
刚度(电磁)
抗弯刚度
曲率
小泡
复杂流体
分子动力学
粒子(生态学)
生物膜
各向异性
膜曲率
纳米技术
生物系统
机械
物理
化学
聚合物
计算化学
复合材料
凝聚态物理
数学教育
地质学
海洋学
生物
量子力学
生物化学
数学
几何学
作者
Hongyan Yuan,Changjin Huang,Ju Li,George Lykotrafitis,Sulin Zhang
出处
期刊:Physical Review E
[American Physical Society]
日期:2010-07-12
卷期号:82 (1): 011905-011905
被引量:140
标识
DOI:10.1103/physreve.82.011905
摘要
Biological membranes are involved in numerous intriguing biophysical and biological cellular phenomena of different length scales, ranging from nanoscale raft formation, vesiculation, to microscale shape transformations. With extended length and time scales as compared to atomistic simulations, solvent-free coarse-grained membrane models have been exploited in mesoscopic membrane simulations. In this study, we present a one-particle-thick fluid membrane model, where each particle represents a cluster of lipid molecules. The model features an anisotropic interparticle pair potential with the interaction strength weighed by the relative particle orientations. With the anisotropic pair potential, particles can robustly self-assemble into fluid membranes with experimentally relevant bending rigidity. Despite its simple mathematical form, the model is highly tunable. Three potential parameters separately and effectively control diffusivity, bending rigidity, and spontaneous curvature of the model membrane. As demonstrated by selected examples, our model can naturally simulate dynamics of phase separation in multicomponent membranes and the topological change of fluid vesicles.
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