湿剪刀:生物分子凝聚物如何切割细胞膜

IF 8.3 2区 生物学 Q1 PLANT SCIENCES
Xiaofeng Fang , Alexander I. May , Katharina Sporbeck , Lukas Hauer , Roland L. Knorr
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引用次数: 0

摘要

膜的形状是细胞组织的基本决定因素。膜的重塑对细胞器和细胞分裂、内吞作用和膜运输等动态过程至关重要。膜裂变(或断裂)是一种不连续的拓扑形状变化,在许多这样的过程中是中心的。专门的重塑蛋白,如动力蛋白和ESCRT蛋白,能够形成寡聚螺旋,驱动细胞中的膜裂变。在这篇综述中,我们总结了由液体状生物分子凝聚物产生的毛细力可以促进细胞膜重塑和驱动裂变事件的证据。我们利用我们最近的发现,冷凝物与多泡体的形成有关,以描述允许生物分子冷凝物切割膜的分子和物理原理。我们进一步讨论了新的凝聚介导的裂变过程和已建立的重塑过程之间可能的相互作用。我们认为冷凝物在不同细胞结构的生物发生过程中对膜重塑事件做出了重要贡献。缩合物介导的膜重塑的特征有望改变我们对细胞内组织和动力学的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wet scissors: How biomolecular condensates cut cellular membranes
Membrane shape is a fundamental determinant of cellular organisation. Reshaping of membranes is crucial for dynamic processes including organelle and cell division, endocytosis and membrane trafficking. Membrane fission (or scission) is a discontinuous, topological shape change that is central in many such processes. Specialised remodelling proteins, such as dynamins and ESCRT proteins, are capable of forming oligomeric spirals that drive membrane fission in cells. In this review, we summarise evidence demonstrating that capillary forces generated by liquid-like biomolecular condensates can facilitate cellular membrane reshaping and drive fission events. We draw on our recent findings that condensates are implicated in multivesicular body formation to describe the molecular and physical principles that allow biomolecular condensates to cut membranes. We further discuss possible interactions between novel condensate-mediated fission processes and established reshaping processes. We propose that condensates make an important contribution to membrane remodelling events involved in the biogenesis of diverse cellular structures. The characterisation of condensate-mediated membrane reshaping promises to transform our understanding of intracellular organisation and dynamics.
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来源期刊
Current opinion in plant biology
Current opinion in plant biology 生物-植物科学
CiteScore
16.30
自引率
3.20%
发文量
131
审稿时长
6-12 weeks
期刊介绍: Current Opinion in Plant Biology builds on Elsevier's reputation for excellence in scientific publishing and long-standing commitment to communicating high quality reproducible research. It is part of the Current Opinion and Research (CO+RE) suite of journals. All CO+RE journals leverage the Current Opinion legacy - of editorial excellence, high-impact, and global reach - to ensure they are a widely read resource that is integral to scientists' workflow.
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