胞质分裂
生物
电池极性
劈理沟
卵裂球
细胞分裂
合子
极性(国际关系)
细胞生物学
不对称细胞分裂
细胞
遗传学
胚胎
胚胎发生
作者
KangBo Ng,Nisha Hirani,Tom Bland,Joana Borrego-Pinto,Susan Wagner,Moritz Kreysing,Nathan W. Goehring
出处
期刊:Current Biology
[Elsevier]
日期:2023-10-01
卷期号:33 (20): 4298-4311.e6
被引量:2
标识
DOI:10.1016/j.cub.2023.08.076
摘要
During development, the conserved PAR polarity network is continuously redeployed, requiring that it adapt to changing cellular contexts and environmental cues. In the early C. elegans embryo, polarity shifts from being a cell-autonomous process in the zygote to one that must be coordinated between neighbors as the embryo becomes multicellular. Here, we sought to explore how the PAR network adapts to this shift in the highly tractable C. elegans germline P lineage. We find that although P lineage blastomeres exhibit a distinct pattern of polarity emergence compared with the zygote, the underlying mechanochemical processes that drive polarity are largely conserved. However, changes in the symmetry-breaking cues of P lineage blastomeres ensure coordination of their polarity axis with neighboring cells. Specifically, we show that furrow-directed cortical flows associated with cytokinesis of the zygote induce symmetry breaking in the germline blastomere P1 by transporting PAR-3 into the nascent cell contact. This pool of PAR-3 then biases downstream PAR polarization pathways to establish the polarity axis of P1 with respect to the position of its anterior sister, AB. Thus, our data suggest that cytokinesis itself induces symmetry breaking through the advection of polarity proteins by furrow-directed flows. By directly linking cell polarity to cell division, furrow-directed cortical flows could be a general mechanism to ensure proper organization of cell polarity within actively dividing systems.
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