细胞生物学
心尖缩窄
Rac-GTP结合蛋白
原肠化
细胞迁移
内化
肌动蛋白
细胞
生物
信号转导
形态发生
RAC1
胚胎
生物化学
胚胎发生
基因
作者
Pu Zhang,Taylor N. Medwig-Kinney,Eleanor A. Breiner,Jadyn M. Perez,A SONG,Bob Goldstein
标识
DOI:10.1083/jcb.202409133
摘要
Apical constriction is a critical cell shape change that drives cell internalization and tissue bending. How precisely localized actomyosin regulators drive apical constriction remains poorly understood. Caenorhabditis elegans gastrulation provides a valuable model to address this question. The Arp2/3 complex is essential in C. elegans gastrulation. To understand how Arp2/3 is locally regulated, we imaged embryos with endogenously tagged Arp2/3 and its nucleation-promoting factors (NPFs). The three NPFs—WAVE, WASP, and WASH—controlled Arp2/3 localization at distinct subcellular locations. We exploited this finding to study distinct populations of Arp2/3 and found that only WAVE depletion caused penetrant gastrulation defects. WAVE localized basolaterally with Arp2/3 and controlled F-actin levels near cell–cell contacts. WAVE and Arp2/3 localization depended on CED-10/Rac. Establishing ectopic cell contacts recruited WAVE and Arp2/3, identifying the contact as a symmetry-breaking cue for localization of these proteins. These results suggest that cell–cell signaling via Rac activates WAVE and Arp2/3 basolaterally and that basolateral Arp2/3 makes an important contribution to apical constriction.
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