Department of Cell and Developmental Biology, University College London, Gower Street, London WC1E 6BT, UK.
Development. 2021 Dec 1;148(23). doi: 10.1242/dev.200001. Epub 2021 Dec 2.
Cells are permanently exposed to a multitude of different kinds of signals: however, how cells respond to simultaneous extracellular signals within a complex in vivo environment is poorly understood. Here, we studied the role of the mechanosensitive ion channel Piezo1 on the migration of the neural crest, a multipotent embryonic cell population. We identify that Piezo1 is required for the migration of Xenopus cephalic neural crest. We show that loss of Piezo1 promotes focal adhesion turnover and cytoskeletal dynamics by controlling Rac1 activity, leading to increased speed of migration. Moreover, overactivation of Rac1, due to Piezo1 inhibition, counteracts cell migration inhibitory signals by Semaphorin 3A and Semaphorin 3F, generating aberrant neural crest invasion in vivo. Thus, we find that, for directional migration in vivo, neural crest cells require a tight regulation of Rac1, by semaphorins and Piezo1. We reveal here that a balance between a myriad of signals through Rac1 dictates cell migration in vivo, a mechanism that is likely to be conserved in other cell migration processes.
然而,在复杂的体内环境中,细胞如何对同时存在的细胞外信号做出反应,目前还知之甚少。在这里,我们研究了机械敏感离子通道 Piezo1 在神经嵴迁移中的作用,神经嵴是一种多能胚胎细胞群。我们发现 Piezo1 对于非洲爪蟾头颈部神经嵴的迁移是必需的。我们表明,Piezo1 通过控制 Rac1 活性促进黏着斑周转和细胞骨架动力学,从而增加迁移速度。此外,由于 Piezo1 抑制,Rac1 的过度激活会抵消 Sema3A 和 Sema3F 产生的抑制细胞迁移的信号,导致体内神经嵴异常入侵。因此,我们发现,对于体内的定向迁移,神经嵴细胞需要通过 semaphorins 和 Piezo1 来严格调节 Rac1。我们在这里揭示,通过 Rac1 来平衡无数信号决定了体内的细胞迁移,这一机制很可能在其他细胞迁移过程中得到保守。