Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, NY 11794-5215, USA.
Skirball Institute of Biomolecular Medicine, New York University School of Medicine, 540 First Avenue, New York, NY 10016, USA.
Cell Rep. 2020 Oct 27;33(4):108311. doi: 10.1016/j.celrep.2020.108311.
Animal embryogenesis requires a precise coordination between morphogenesis and cell fate specification. During mesoderm induction, mesodermal fate acquisition is tightly coordinated with the morphogenetic process of epithelial-to-mesenchymal transition (EMT). In zebrafish, cells exist transiently in a partial EMT state during mesoderm induction. Here, we show that cells expressing the transcription factor Sox2 are held in the partial EMT state, stopping them from completing the EMT and joining the mesoderm. This is critical for preventing the formation of ectopic neural tissue. The mechanism involves synergy between Sox2 and the mesoderm-inducing canonical Wnt signaling pathway. When Wnt signaling is inhibited in Sox2-expressing cells trapped in the partial EMT, cells exit into the mesodermal territory but form an ectopic spinal cord instead of mesoderm. Our work identifies a critical developmental checkpoint that ensures that morphogenetic movements establishing the mesodermal germ layer are accompanied by robust mesodermal cell fate acquisition.
动物胚胎发生需要形态发生和细胞命运特化之间的精确协调。在中胚层诱导过程中,中胚层命运的获得与上皮到间质转化 (EMT) 的形态发生过程紧密协调。在斑马鱼中,细胞在中胚层诱导过程中暂时处于部分 EMT 状态。在这里,我们表明表达转录因子 Sox2 的细胞处于部分 EMT 状态,阻止它们完成 EMT 并加入中胚层。这对于防止异位神经组织的形成至关重要。该机制涉及 Sox2 与中胚层诱导的经典 Wnt 信号通路之间的协同作用。当抑制 Sox2 表达细胞中的 Wnt 信号时,这些细胞会退出到中胚层区域,但形成异位脊髓而不是中胚层。我们的工作确定了一个关键的发育检查点,以确保建立中胚层胚层的形态发生运动伴随着强大的中胚层细胞命运获得。