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水/固界面处机械力诱导的F-肌动蛋白聚合和解聚

Mechanical force-induced polymerization and depolymerization of F-actin at water/solid interfaces.

作者信息

Zhang Xueqiang, Hu Xiuyuan, Lei Haozhi, Hu Jun, Zhang Yi

机构信息

Key Laboratory of Interfacial Physics and Technology, Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China.

出版信息

Nanoscale. 2016 Mar 21;8(11):6008-13. doi: 10.1039/c5nr08713a. Epub 2016 Feb 29.

Abstract

Actin molecules are among the three main cytoskeleton proteins of cells and undergo rapid cycling to regulate critical processes such as endocytosis, cytokinesis, cell polarity, and cell morphogenesis. Although extensive studies have been carried out on the dynamics as well as biological functions of actin polymerization and depolymerization both in vivo and in vitro, the molecular mechanisms by which cells sense and respond to mechanical signals are not fully understood. In particular, little attention has been paid to the effect of a physical force that is exerted directly on the actin cytoskeleton. In this paper, we have explored how the mechanical force affects the actin polymerization and depolymerization behaviors at water/solid interfaces using an atomic force microscope (AFM) operated in liquid. By raster scanning an AFM probe on a substrate surface with a certain load, it was found that actin monomers could polymerize into filaments without the help of actin related proteins (ARPs). Further study indicated that actin monomers were inclined to form filaments only under a small scanning load. The polymerized actin filaments would be depolymerized when the mechanical force was stronger. A possible mechanism has been suggested to explain the mechanical force induced actin polymerization.

摘要

肌动蛋白分子是细胞的三种主要细胞骨架蛋白之一,经历快速循环以调节诸如内吞作用、胞质分裂、细胞极性和细胞形态发生等关键过程。尽管在体内和体外对肌动蛋白聚合和解聚的动力学以及生物学功能进行了广泛研究,但细胞感知和响应机械信号的分子机制尚未完全了解。特别是,直接作用于肌动蛋白细胞骨架的物理力的影响很少受到关注。在本文中,我们使用在液体中操作的原子力显微镜(AFM)探索了机械力如何影响水/固界面处的肌动蛋白聚合和解聚行为。通过在具有一定负载的基板表面上光栅扫描AFM探针,发现肌动蛋白单体可以在没有肌动蛋白相关蛋白(ARP)帮助的情况下聚合成细丝。进一步研究表明,肌动蛋白单体仅在小扫描负载下倾向于形成细丝。当机械力更强时,聚合的肌动蛋白细丝会解聚。已经提出了一种可能的机制来解释机械力诱导的肌动蛋白聚合。

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