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膜结合控制动物 septin 的有序自组装。

Membrane binding controls ordered self-assembly of animal septins.

机构信息

AMOLF, Department of Living Matter, Biological Soft Matter group, Amsterdam, Netherlands.

School of Biomedical Sciences, Faculty of Biological Sciences, Astbury Centre for Structural Molecular Biology, University of Leeds, Leeds, United Kingdom.

出版信息

Elife. 2021 Apr 13;10:e63349. doi: 10.7554/eLife.63349.

Abstract

Septins are conserved cytoskeletal proteins that regulate cell cortex mechanics. The mechanisms of their interactions with the plasma membrane remain poorly understood. Here, we show by cell-free reconstitution that binding to flat lipid membranes requires electrostatic interactions of septins with anionic lipids and promotes the ordered self-assembly of fly septins into filamentous meshworks. Transmission electron microscopy reveals that both fly and mammalian septin hexamers form arrays of single and paired filaments. Atomic force microscopy and quartz crystal microbalance demonstrate that the fly filaments form mechanically rigid, 12- to 18-nm thick, double layers of septins. By contrast, C-terminally truncated septin mutants form 4-nm thin monolayers, indicating that stacking requires the C-terminal coiled coils on DSep2 and Pnut subunits. Our work shows that membrane binding is required for fly septins to form ordered arrays of single and paired filaments and provides new insights into the mechanisms by which septins may regulate cell surface mechanics.

摘要

septins 是保守的细胞骨架蛋白,可调节细胞膜力学。但其与质膜相互作用的机制仍知之甚少。在这里,我们通过无细胞重构实验表明,与平面脂质膜的结合需要 septins 与阴离子脂质的静电相互作用,并促进苍蝇 septins 有序地自组装成丝状网格。透射电子显微镜显示,苍蝇和哺乳动物的 septin 六聚体都形成单丝和双丝的阵列。原子力显微镜和石英晶体微天平证明苍蝇丝形成机械刚性的、12-18nm 厚的双层 septin。相比之下,C 端截断的 septin 突变体形成 4nm 厚的单层,表明堆叠需要 DSep2 和 Pnut 亚基上的 C 端卷曲螺旋。我们的工作表明,膜结合是苍蝇 septin 形成单丝和双丝有序排列所必需的,并为 septin 可能调节细胞表面力学的机制提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f422/8099429/1bdb966fa31e/elife-63349-fig1.jpg

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