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纺锤体定位机制:从线虫和哺乳动物细胞中得到的启示。

Mechanisms of Spindle Positioning: Lessons from Worms and Mammalian Cells.

机构信息

Department of Microbiology and Cell Biology (MCB), Indian Institute of Science (IISc), Bangalore 560012, India.

出版信息

Biomolecules. 2019 Feb 25;9(2):80. doi: 10.3390/biom9020080.

Abstract

Proper positioning of the mitotic spindle is fundamental for specifying the site for cleavage furrow, and thus regulates the appropriate sizes and accurate distribution of the cell fate determinants in the resulting daughter cells during development and in the stem cells. The past couple of years have witnessed tremendous work accomplished in the area of spindle positioning, and this has led to the emergence of a working model unravelling in-depth mechanistic insight of the underlying process orchestrating spindle positioning. It is evident now that the correct positioning of the mitotic spindle is not only guided by the chemical cues (protein⁻protein interactions) but also influenced by the physical nature of the cellular environment. In metazoans, the key players that regulate proper spindle positioning are the actin-rich cell cortex and associated proteins, the ternary complex (Gα/GPR-1/2/LIN-5 in , Gαi/Pins/Mud in and Gαi/LGN/NuMA in humans), minus-end-directed motor protein dynein and the cortical machinery containing myosin. In this review, I will mainly discuss how the abovementioned components precisely and spatiotemporally regulate spindle positioning by sensing the physicochemical environment for execution of flawless mitosis.

摘要

纺锤体的正确定位对于确定分裂沟的位置至关重要,从而调节了发育过程中和干细胞中细胞命运决定因素在子细胞中的适当大小和准确分配。在过去的几年中,纺锤体定位领域取得了巨大的进展,这导致了一个工作模型的出现,深入揭示了调节纺锤体定位的基础过程的机制见解。现在很明显,有丝分裂纺锤体的正确定位不仅受到化学线索(蛋白质-蛋白质相互作用)的指导,还受到细胞环境的物理性质的影响。在后生动物中,调节适当纺锤体定位的关键参与者是富含肌动蛋白的细胞皮质和相关蛋白、三元复合物(在 中为 Gα/GPR-1/2/LIN-5,在 中为 Gαi/Pins/Mud,在人类中为 Gαi/LGN/NuMA)、向负极定向的动力蛋白 dynein 和含有肌球蛋白的皮质机械。在这篇综述中,我将主要讨论上述成分如何通过感知物理化学环境来精确和时空调节纺锤体定位,从而执行完美的有丝分裂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc6a/6406873/8c3d96900c49/biomolecules-09-00080-g001.jpg

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