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迁移调节细胞的力学状态。

Migration regulates cellular mechanical states.

机构信息

Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213.

出版信息

Mol Biol Cell. 2019 Dec 15;30(26):3104-3111. doi: 10.1091/mbc.E19-02-0099. Epub 2019 Nov 6.

Abstract

Recent studies indicate that adherent cells are keenly sensitive to external physical environment, such as substrate rigidity and topography, and internal physical states, such as cell shape and spreading area. Many of these responses are believed to involve coupled output and input of mechanical forces, which may constitute the key sensing mechanism to generate downstream regulatory signals for cell growth and differentiation. Here, we show that the state of cell migration also plays a regulatory role. Compared with migrating cells, stationary cells generate stronger, less dynamic, and more peripherally localized traction forces. These changes are coupled to reduced focal adhesion turnover and enhanced paxillin phosphorylation. Further, using cells migrating along checkerboard micropatterns, we show that the appearance of new focal adhesions directly in front of existing focal adhesions is associated with the down-regulation of existing focal adhesions and associated traction forces. Together, our results imply a mechanism where cell migration regulates traction forces by promoting dynamic turnover of focal adhesions, which may then regulate processes such as wound healing and embryogenesis where cell differentiation must coordinate with migration state and proper localization.

摘要

最近的研究表明,贴壁细胞对外界物理环境(如基质硬度和形貌)和内部物理状态(如细胞形状和扩展面积)非常敏感。人们认为,这些反应中的许多都涉及机械力的耦合输出和输入,这可能构成产生细胞生长和分化的下游调节信号的关键传感机制。在这里,我们表明细胞迁移的状态也起着调节作用。与迁移细胞相比,静止细胞产生的力更强、动态性更差且更局限于细胞外周。这些变化与粘着斑周转率降低和桩蛋白磷酸化增强有关。此外,使用沿着棋盘状微图案迁移的细胞,我们表明在现有粘着斑前方直接出现新的粘着斑与现有粘着斑及其相关牵引力的下调有关。总之,我们的结果表明了一种机制,即细胞迁移通过促进粘着斑的动态周转来调节牵引力,这可能会调节伤口愈合和胚胎发生等过程,在这些过程中,细胞分化必须与迁移状态和适当的定位相协调。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3dde/6938245/7426d5891b5f/mbc-30-3104-g001.jpg

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