外胚层
细胞生物学
细胞外基质
形态发生
生物
细胞命运测定
原肠化
胚胎干细胞
细胞迁移
电池极性
胚胎
胚胎发生
细胞
遗传学
转录因子
基因
作者
Prachiti Moghe,Roman Belousov,Takafumi Ichikawa,Chizuru Iwatani,Tomoyuki Tsukiyama,Anna Erzberger,Takashi Hiiragi
标识
DOI:10.1038/s41556-025-01618-9
摘要
Abstract Tissue patterning coordinates morphogenesis, cell dynamics and fate specification. Understanding how precision in patterning is robustly achieved despite inherent developmental variability during mammalian embryogenesis remains a challenge. Here, based on cell dynamics quantification and simulation, we show how salt-and-pepper epiblast and primitive endoderm (PrE) cells pattern the inner cell mass of mouse blastocysts. Coupling cell fate and dynamics, PrE cells form apical polarity-dependent actin protrusions required for RAC1-dependent migration towards the surface of the fluid cavity, where PrE cells are trapped due to decreased tension. Concomitantly, PrE cells deposit an extracellular matrix gradient, presumably breaking the tissue-level symmetry and collectively guiding their own migration. Tissue size perturbations of mouse embryos and their comparison with monkey and human blastocysts further demonstrate that the fixed proportion of PrE/epiblast cells is optimal with respect to embryo size and tissue geometry and, despite variability, ensures patterning robustness during early mammalian development.
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