Pouille Philippe-Alexandre, Ahmadi Padra, Brunet Anne-Christine, Farge Emmanuel
UMR 168, CNRS, Institut Curie, 11 rue Pierre et Marie Curie, 75005 Paris, France.
Sci Signal. 2009 Apr 14;2(66):ra16. doi: 10.1126/scisignal.2000098.
During Drosophila gastrulation, two waves of constriction occur in the apical ventral cells, leading to mesoderm invagination. The first constriction wave is a stochastic process mediated by the constriction of 40% of randomly positioned mesodermal cells and is controlled by the transcription factor Snail. The second constriction wave immediately follows and involves the other 60% of the mesodermal cells. The second wave is controlled by the transcription factor Twist and requires the secreted protein Fog. Complete mesoderm invagination requires redistribution of the motor protein Myosin II to the apical side of the constricting cells. We show that apical redistribution of Myosin II and mesoderm invagination, both of which are impaired in snail homozygous mutants that are defective in both constriction waves, are rescued by local mechanical deformation of the mesoderm with a micromanipulated needle. Mechanical deformation appears to promote Fog-dependent signaling by inhibiting Fog endocytosis. We propose that the mechanical tissue deformation that occurs during the Snail-dependent stochastic phase is necessary for the Fog-dependent signaling that mediates the second collective constriction wave.
在果蝇原肠胚形成过程中,顶端腹侧细胞会发生两波收缩,导致中胚层内陷。第一波收缩是一个随机过程,由40%随机定位的中胚层细胞收缩介导,并受转录因子Snail控制。第二波收缩紧接着发生,涉及另外60%的中胚层细胞。第二波收缩由转录因子Twist控制,并需要分泌蛋白Fog。完整的中胚层内陷需要将运动蛋白肌球蛋白II重新分布到收缩细胞的顶端。我们发现,在两波收缩均有缺陷的蜗牛纯合突变体中,肌球蛋白II的顶端重新分布和中胚层内陷均受损,而通过用显微操作针进行中胚层的局部机械变形可以挽救这种情况。机械变形似乎通过抑制Fog内吞作用来促进依赖Fog的信号传导。我们提出,在依赖Snail的随机阶段发生的机械组织变形对于介导第二波集体收缩的依赖Fog的信号传导是必要的。