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双层膜中水渗透与翻转运动的关系。

Relationship between water permeation and flip-flop motion in a bilayer membrane.

机构信息

Department of Mechanical Engineering, Kindai University, 3-4-1 Kowakae, Higashiosaka, Osaka 577-8502, Japan.

出版信息

Phys Chem Chem Phys. 2018 Nov 14;20(44):28155-28161. doi: 10.1039/c8cp04610g.

Abstract

The lipid bilayer membrane facilitates various biological reactions and is thus an essential structure that sustains all higher forms of life. The unique local environment of the lipid bilayer plays critical roles for the diffusion of biomolecules as well as water molecules in biological reactions. Although fluctuation of the cell membrane is expected to allow for the transport of some water molecules, the flip-flop of lipid molecules corresponds to lipid transport between membrane leaflets, and is considered to be an important process to regulate the lipid composition of biological membranes. However, the relationship between these flip-flop phenomena and surrounding water molecules remains poorly understood. We hypothesized that the flip-flop is caused by water molecules permeating through the cell membrane. To test this hypothesis, we used millisecond-order coarse-grained molecular simulations (dissipative particle dynamics) to investigate the distance between water molecules and lipid molecules depending on the position of the lipid molecule. The results clearly showed that water molecules affect the flip-flop motion in the early stage, but have minimal contribution to the subsequent behavior. Moreover, based on the results of dissipative particle dynamics simulation, we computed several first-passage-time (FPT) quantities to describe the detailed dynamics of water permeation. We modeled arrangements in the middle of the flip-flop process, which were compared with the arrangement without lipid molecules. Overall, our results indicate that lipid molecules located both in perpendicular and parallel arrangements largely affect water permeation. These findings provide new insight into the detailed relationship between water permeation and the flip-flop motion.

摘要

脂质双层膜促进了各种生物反应,因此是维持所有高等生命形式的基本结构。脂质双层的独特局部环境对生物反应中生物分子和水分子的扩散起着关键作用。尽管细胞膜的波动预计可以允许一些水分子的运输,但脂质分子的翻转对应于脂质在膜小叶之间的转运,被认为是调节生物膜脂质组成的重要过程。然而,这些翻转现象与周围水分子之间的关系仍知之甚少。我们假设翻转是由水分子渗透穿过细胞膜引起的。为了验证这一假设,我们使用毫秒级别的粗粒分子模拟(耗散粒子动力学)来研究水分子和脂质分子之间的距离取决于脂质分子的位置。结果清楚地表明,水分子在早期影响翻转运动,但对随后的行为几乎没有贡献。此外,基于耗散粒子动力学模拟的结果,我们计算了几个首次通过时间(FPT)数量来描述水分子渗透的详细动力学。我们模拟了翻转过程中间的排列,并将其与没有脂质分子的排列进行了比较。总体而言,我们的结果表明,垂直和平行排列的脂质分子都对水分子的渗透有很大影响。这些发现为水分子渗透和翻转运动之间的详细关系提供了新的见解。

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