Mechanisms of microtubule organization in differentiated animal cells

IF 81.3 1区 生物学 Q1 CELL BIOLOGY Nature Reviews Molecular Cell Biology Pub Date : 2022-04-05 DOI:10.1038/s41580-022-00473-y
Anna Akhmanova, Lukas C. Kapitein
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引用次数: 34

Abstract

Microtubules are polarized cytoskeletal filaments that serve as tracks for intracellular transport and form a scaffold that positions organelles and other cellular components and modulates cell shape and mechanics. In animal cells, the geometry, density and directionality of microtubule networks are major determinants of cellular architecture, polarity and proliferation. In dividing cells, microtubules form bipolar spindles that pull chromosomes apart, whereas in interphase cells, microtubules are organized in a cell type-specific fashion, which strongly correlates with cell physiology. In motile cells, such as fibroblasts and immune cells, microtubules are organized as radial asters, whereas in immotile epithelial and neuronal cells and in muscles, microtubules form parallel or antiparallel arrays and cortical meshworks. Here, we review recent work addressing how the formation of such microtubule networks is driven by the plethora of microtubule regulatory proteins. These include proteins that nucleate or anchor microtubule ends at different cellular structures and those that sever or move microtubules, as well as regulators of microtubule elongation, stability, bundling or modifications. The emerging picture, although still very incomplete, shows a remarkable diversity of cell-specific mechanisms that employ conserved building blocks to adjust microtubule organization in order to facilitate different cellular functions. The configuration of microtubule networks is cell type-specific and strongly correlates with cell function and behaviour. The regulation of microtubule nucleation, dynamics and distribution all contribute to the establishment and remodelling of these functionally diverse microtubule architectures.

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分化动物细胞中的微管组织机制
微管是极化的细胞骨架丝,是细胞内运输的轨道,也是定位细胞器和其他细胞成分以及调节细胞形状和力学的支架。在动物细胞中,微管网络的几何形状、密度和方向性是细胞结构、极性和增殖的主要决定因素。在分裂细胞中,微管形成双极纺锤体,将染色体拉开,而在间期细胞中,微管以特定细胞类型的方式组织,这与细胞生理密切相关。在成纤维细胞和免疫细胞等运动细胞中,微管呈放射状星形排列,而在不运动的上皮细胞、神经细胞和肌肉中,微管形成平行或反平行阵列和皮质网状结构。在此,我们回顾了近期的研究工作,探讨了大量微管调控蛋白如何驱动此类微管网络的形成。这些蛋白包括在不同细胞结构中核化或锚定微管末端的蛋白,切断或移动微管的蛋白,以及微管伸长、稳定性、捆绑或修饰的调控因子。新出现的图景尽管还很不完整,但却显示出细胞特异性机制的显著多样性,这些机制利用保守的构件来调整微管组织,以促进不同的细胞功能。微管网络的构型具有细胞类型特异性,与细胞功能和行为密切相关。微管成核、动态和分布的调控都有助于建立和重塑这些功能各异的微管结构。
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来源期刊
Nature Reviews Molecular Cell Biology
Nature Reviews Molecular Cell Biology 生物-细胞生物学
CiteScore
173.60
自引率
0.50%
发文量
118
审稿时长
6-12 weeks
期刊介绍: Nature Reviews Molecular Cell Biology is a prestigious journal that aims to be the primary source of reviews and commentaries for the scientific communities it serves. The journal strives to publish articles that are authoritative, accessible, and enriched with easily understandable figures, tables, and other display items. The goal is to provide an unparalleled service to authors, referees, and readers, and the journal works diligently to maximize the usefulness and impact of each article. Nature Reviews Molecular Cell Biology publishes a variety of article types, including Reviews, Perspectives, Comments, and Research Highlights, all of which are relevant to molecular and cell biologists. The journal's broad scope ensures that the articles it publishes reach the widest possible audience.
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