Raymond and Beverly Sackler School of Chemistry, Center for Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv, Israel.
Raymond and Beverly Sackler School of Chemistry, Center for Physics and Chemistry of Living Systems, Tel Aviv University, Tel Aviv, Israel.
Biophys J. 2021 May 18;120(10):2030-2039. doi: 10.1016/j.bpj.2021.03.011. Epub 2021 Mar 17.
We study the Brownian motion of an assembly of mobile inclusions embedded in a fluid membrane. The motion includes the dispersal of the assembly, accompanied by the diffusion of its center of mass. Usually, the former process is much faster than the latter because the diffusion coefficient of the center of mass is inversely proportional to the number of particles. However, in the case of membrane inclusions, we find that the two processes occur on the same timescale, thus significantly prolonging the lifetime of the assembly as a collectively moving object. This effect is caused by the quasi-two-dimensional membrane flows, which couple the motions of even the most remote inclusions in the assembly. The same correlations also cause the diffusion coefficient of the center of mass to decay slowly with time, resulting in weak subdiffusion. We confirm our analytical results by Brownian dynamics simulations with flow-mediated correlations. The effect reported here should have implications for the stability of nanoscale membrane heterogeneities.
我们研究了嵌入流体膜中的可动内含物的布朗运动。该运动包括集合体的扩散,伴随着其质心的扩散。通常,由于质心的扩散系数与粒子的数量成反比,因此前一过程比后一过程快得多。然而,在膜内含物的情况下,我们发现这两个过程发生在相同的时间尺度上,从而显著延长了作为一个整体运动物体的集合体的寿命。这种效应是由准二维膜流引起的,即使是集合体中最遥远的内含物的运动也会受到膜流的影响。相同的相关性也导致质心的扩散系数随时间缓慢衰减,导致弱扩散。我们通过带有流介导相关性的布朗动力学模拟来验证我们的分析结果。这里报道的效应应该对纳米级膜异质性的稳定性有影响。