Huang Junqi, Chew Ting Gang, Gu Ying, Palani Saravanan, Kamnev Anton, Martin Douglas S, Carter Nicholas J, Cross Robert Anthony, Oliferenko Snezhana, Balasubramanian Mohan K
Division of Biomedical Sciences, Warwick Medical School, University of Warwick, Coventry, United Kingdom.
Randall Division of Cell and Molecular Biophysics, King's College London, London, United Kingdom.
Elife. 2016 Oct 13;5:e21383. doi: 10.7554/eLife.21383.
Many eukaryotes assemble a ring-shaped actomyosin network that contracts to drive cytokinesis. Unlike actomyosin in sarcomeres, which cycles through contraction and relaxation, the cytokinetic ring disassembles during contraction through an unknown mechanism. Here we find in and that, during actomyosin ring contraction, actin filaments associated with actomyosin rings are expelled as micron-scale bundles containing multiple actomyosin ring proteins. Using functional isolated actomyosin rings we show that expulsion of actin bundles does not require continuous presence of cytoplasm. Strikingly, mechanical compression of actomyosin rings results in expulsion of bundles predominantly at regions of high curvature. Our work unprecedentedly reveals that the increased curvature of the ring itself promotes its disassembly. It is likely that such a curvature-induced mechanism may operate in disassembly of other contractile networks.
许多真核生物会组装一个环形的肌动球蛋白网络,该网络收缩以驱动细胞分裂。与肌节中的肌动球蛋白不同,后者会经历收缩和舒张循环,而细胞分裂环在收缩过程中会通过一种未知机制解体。我们在本文中发现,在肌动球蛋白环收缩过程中,与肌动球蛋白环相关的肌动蛋白丝会作为包含多种肌动球蛋白环蛋白的微米级束被排出。使用功能分离的肌动球蛋白环,我们表明肌动蛋白束的排出不需要细胞质的持续存在。引人注目的是,对肌动球蛋白环的机械压缩导致束主要在高曲率区域被排出。我们的工作前所未有地揭示了环本身曲率的增加会促进其解体。这种曲率诱导机制可能也在其他收缩网络的解体中起作用。