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将中心体转变为微管成核剂。

Phase Transitioning the Centrosome into a Microtubule Nucleator.

作者信息

Rale Michael J, Kadzik Rachel S, Petry Sabine

机构信息

Department of Molecular Biology, Princeton University , Princeton, New Jersey 08544, United States.

出版信息

Biochemistry. 2018 Jan 9;57(1):30-37. doi: 10.1021/acs.biochem.7b01064. Epub 2017 Dec 19.

DOI:10.1021/acs.biochem.7b01064
PMID:29256606
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6193265/
Abstract

Centrosomes are self-assembling, micron-scale, nonmembrane bound organelles that nucleate microtubules (MTs) and organize the microtubule cytoskeleton of the cell. They orchestrate critical cellular processes such as ciliary-based motility, vesicle trafficking, and cell division. Much is known about the role of the centrosome in these contexts, but we have a less comprehensive understanding of how the centrosome assembles and generates microtubules. Studies over the past 10 years have fundamentally shifted our view of these processes. Subdiffraction imaging has probed the amorphous haze of material surrounding the core of the centrosome revealing a complex, hierarchically organized structure whose composition and size changes profoundly during the transition from interphase to mitosis. New biophysical insights into protein phase transitions, where a diffuse protein spontaneously separates into a locally concentrated, nonmembrane bounded compartment, have provided a fresh perspective into how the centrosome might rapidly condense from diffuse cytoplasmic components. In this Perspective, we focus on recent findings that identify several centrosomal proteins that undergo phase transitions. We discuss how to reconcile these results with the current model of the underlying organization of proteins in the centrosome. Furthermore, we reflect on how these findings impact our understanding of how the centrosome undergoes self-assembly and promotes MT nucleation.

摘要

中心体是自我组装的、微米级的、无膜结合的细胞器,它能使微管(MTs)成核并组织细胞的微管细胞骨架。它们协调关键的细胞过程,如基于纤毛的运动、囊泡运输和细胞分裂。关于中心体在这些情况下的作用我们已经了解很多,但对于中心体如何组装和产生微管,我们的理解还不够全面。过去10年的研究从根本上改变了我们对这些过程的看法。亚衍射成像探测了围绕中心体核心的无定形物质雾霭,揭示了一种复杂的、层次组织的结构,其组成和大小在从间期到有丝分裂的转变过程中发生了深刻变化。对蛋白质相变的新生物物理见解,即一种扩散的蛋白质自发分离成局部浓缩的、无膜结合的区室,为中心体如何从扩散的细胞质成分中快速浓缩提供了新的视角。在这篇综述中,我们重点关注最近的发现,这些发现确定了几种经历相变的中心体蛋白。我们讨论如何将这些结果与当前关于中心体中蛋白质基础组织的模型相协调。此外,我们思考这些发现如何影响我们对中心体如何进行自我组装和促进微管成核的理解。

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本文引用的文献

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The Eukaryotic CO-Concentrating Organelle Is Liquid-like and Exhibits Dynamic Reorganization.真核生物的二氧化碳浓缩细胞器呈液体状并表现出动态重组。
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The Centrosome Is a Selective Condensate that Nucleates Microtubules by Concentrating Tubulin.中心体是一种选择性凝聚物,通过浓缩微管蛋白来成核微管。
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Abl2 repairs microtubules and phase separates with tubulin to promote microtubule nucleation.Abl2 修复微管并与微管蛋白相分离以促进微管成核。
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Single-cell proteo-genomic reveals a comprehensive map of centrosome-associated spliceosome components.单细胞蛋白质基因组学揭示了中心体相关剪接体成分的全面图谱。
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Actin filaments form a size-dependent diffusion barrier around centrosomes.肌动蛋白丝在中心体周围形成一种大小依赖的扩散屏障。
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Overexpression of the microtubule-binding protein CLIP-170 induces a +TIP network superstructure consistent with a biomolecular condensate.微管结合蛋白 CLIP-170 的过表达诱导形成与生物分子凝聚物一致的 +TIP 网络超结构。
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New Family Members of FG Repeat Proteins and Their Unexplored Roles During Phase Separation.FG重复蛋白的新家族成员及其在相分离过程中尚未探索的作用。
Front Cell Dev Biol. 2021 Jul 12;9:708702. doi: 10.3389/fcell.2021.708702. eCollection 2021.
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Molecular insight into how γ-TuRC makes microtubules.γ-微管蛋白环形复合物(γ-TuRC)如何形成微管的分子机制解析
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