肌球蛋白
生物
细胞生物学
光漂白后的荧光恢复
分子马达
收缩性
肌动蛋白
伤口愈合
张力(地质)
生物物理学
胚胎干细胞
解剖
生物化学
遗传学
物理
基因
内分泌学
经典力学
力矩(物理)
膜
作者
Anna B. Kobb,Teresa Zulueta-Coarasa,Rodrigo Fernández‐González
摘要
ABSTRACT Embryos repair epithelial wounds rapidly in a process driven by collective cell movements. Upon wounding, actin and the molecular motor non-muscle myosin II are redistributed in the cells adjacent to the wound, forming a supracellular purse string around the lesion. Purse string contraction coordinates cell movements and drives rapid wound closure. By using fluorescence recovery after photobleaching in Drosophila embryos, we found that myosin turns over as the purse string contracts. Myosin turnover at the purse string was slower than in other actomyosin networks that had a lower level of contractility. Mathematical modelling suggested that myosin assembly and disassembly rates were both reduced by tension at the wound edge. We used laser ablation to show that tension at the purse string increased as wound closure progressed, and that the increase in tension was associated with reduced myosin turnover. Reducing purse string tension by laser-mediated severing resulted in increased turnover and loss of myosin. Finally, myosin motor activity was necessary for its stabilization around the wound and for rapid wound closure. Our results indicate that mechanical forces regulate myosin dynamics during embryonic wound repair.
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