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表面压力和内摩擦力对剪切驱动支撑脂质双层动力学的影响。

Effects of surface pressure and internal friction on the dynamics of shear-driven supported lipid bilayers.

机构信息

Department of Applied Physics, Chalmers University of Technology, Gothenburg, Sweden.

出版信息

Langmuir. 2011 Feb 15;27(4):1430-9. doi: 10.1021/la103959w. Epub 2010 Dec 10.

Abstract

Supported lipid bilayers (SLBs) are one of the most common model systems for cell membrane studies. We have previously found that when applying a bulk flow of liquid above an SLB the lipid bilayer and its constituents move in the direction of the bulk flow in a rolling type of motion, with the lower monolayer being essentially stationary. In this study, a theoretical platform is developed to model the dynamic behavior of a shear-driven SLB. In most regions of the moving SLB, the dynamics of the lipid bilayer is well explained by a balance between the hydrodynamic shear force arising from the bulk flow above the lipid bilayer and the friction between the upper and lower monolayers of the SLB. These two forces result in a drift velocity profile for the lipids in the upper monolayer of the SLB that is highest at the center of the channel and decreases to almost zero at the corners of the channel. However, near the front of an advancing SLB a very different flow behavior is observed, showing an almost constant drift velocity of the lipids over the entire bilayer front. In this region, the motion of the SLB is significantly influenced by gradients in the surface pressure as well as internal friction due to molecules that have accumulated at the front of the SLB. It is shown that even a modest surface fraction of accumulated molecules (∼1%) can drastically affect the behavior of the SLB near the bilayer front, forcing the advancing lipids in the SLB away from the center of the channel out toward the sides.

摘要

支持的脂质双层(SLB)是细胞膜研究中最常用的模型系统之一。我们之前发现,当在 SLB 上方施加液体的体流时,脂质双层及其组成部分以滚动式运动的方式向体流的方向移动,而下单层基本上是静止的。在这项研究中,开发了一个理论平台来模拟剪切驱动的 SLB 的动态行为。在移动的 SLB 的大多数区域中,脂质双层的动力学可以通过平衡由脂质双层上方的体流产生的流体剪切力和 SLB 的上下单层之间的摩擦来很好地解释。这两个力导致 SLB 的上层单分子层中的脂质的漂移速度分布,在通道的中心最高,在通道的角落几乎降为零。然而,在前进的 SLB 的前沿附近,观察到非常不同的流动行为,显示出脂质在整个双层前沿上几乎恒定的漂移速度。在该区域,SLB 的运动受到表面压力梯度以及由于在 SLB 前沿积聚的分子引起的内部摩擦的显著影响。结果表明,即使是积累的分子的适度表面分数(约 1%)也会极大地影响 SLB 在前层附近的行为,迫使 SLB 中的前进脂质远离通道中心向两侧移动。

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