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细胞大小和极化决定了小鼠胚胎胞质分裂沟内陷的动力学。

Cell size and polarization determine cytokinesis furrow ingression dynamics in mouse embryos.

机构信息

Centre de Recherche du Centre Hospitalier de l'Université de Montréal, Montréal, QC H2X 0A9, Canada.

Département d'Obstétrique-Gynécologie, Université de Montréal, Montréal, QC H3C 3J7, Canada.

出版信息

Proc Natl Acad Sci U S A. 2022 Mar 22;119(12):e2119381119. doi: 10.1073/pnas.2119381119. Epub 2022 Mar 16.

Abstract

Cytokinesis is the final step of cell division during which a contractile ring forms a furrow that partitions the cytoplasm in two. How furrow ingression is spatiotemporally regulated and how it is adapted to complex cellular environments and developmental transitions remain poorly understood. Here, we examine furrow ingression dynamics in the context of the early mouse embryo and find that cell size is a powerful determinant of furrow ingression speed during reductive cell divisions. In addition, the emergence of cell polarity and the assembly of the apical domain in outer cells locally inhibits the recruitment of cytokinesis components and thereby negatively regulates furrow ingression specifically on one side of the furrow. We show that this biasing of cytokinesis is not dependent upon cell–cell adhesion or shape but rather is cell intrinsic and is caused by a paucity of cytokinetic machinery in the apical domain. The results thus reveal that in the mouse embryo cell polarity directly regulates the recruitment of cytokinetic machinery in a cell-autonomous manner and that subcellular organization can instigate differential force generation and constriction speed in different zones of the cytokinetic furrow.

摘要

胞质分裂是细胞分裂的最后一步,在此过程中,收缩环形成一个沟,将细胞质分为两部分。沟的内陷如何在时空上被调节,以及它如何适应复杂的细胞环境和发育转变,仍然知之甚少。在这里,我们在早期小鼠胚胎的背景下研究了沟的内陷动力学,发现细胞大小是还原分裂过程中沟内陷速度的一个强有力的决定因素。此外,细胞极性的出现和顶域的组装在外细胞中局部抑制了胞质分裂成分的招募,从而特异性地负调控沟的内陷。我们表明,这种胞质分裂的偏向不依赖于细胞-细胞粘附或形状,而是细胞内在的,是由于顶域中胞质分裂机制的缺乏。因此,这些结果表明,在小鼠胚胎中,细胞极性直接以细胞自主的方式调节胞质分裂机制的招募,并且亚细胞组织可以在胞质分裂沟的不同区域引发不同的力产生和收缩速度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bcb/8944651/d88ee6ab87ec/pnas.2119381119fig01.jpg

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