Laboratoire Matière et Systèmes Complexes, Centre National de la Recherche Scientifique Unité Mixte de Recherche, 7057, Université Paris Diderot, 75205 Paris Cedex 13, France.
Proc Natl Acad Sci U S A. 2012 May 1;109(18):6933-8. doi: 10.1073/pnas.1117810109. Epub 2012 Apr 16.
Cell migration plays a major role in many fundamental biological processes, such as morphogenesis, tumor metastasis, and wound healing. As they anchor and pull on their surroundings, adhering cells actively probe the stiffness of their environment. Current understanding is that traction forces exerted by cells arise mainly at mechanotransduction sites, called focal adhesions, whose size seems to be correlated to the force exerted by cells on their underlying substrate, at least during their initial stages. In fact, our data show by direct measurements that the buildup of traction forces is faster for larger substrate stiffness, and that the stress measured at adhesion sites depends on substrate rigidity. Our results, backed by a phenomenological model based on active gel theory, suggest that rigidity-sensing is mediated by a large-scale mechanism originating in the cytoskeleton instead of a local one. We show that large-scale mechanosensing leads to an adaptative response of cell migration to stiffness gradients. In response to a step boundary in rigidity, we observe not only that cells migrate preferentially toward stiffer substrates, but also that this response is optimal in a narrow range of rigidities. Taken together, these findings lead to unique insights into the regulation of cell response to external mechanical cues and provide evidence for a cytoskeleton-based rigidity-sensing mechanism.
细胞迁移在许多基本的生物学过程中起着重要作用,例如形态发生、肿瘤转移和伤口愈合。当附着的细胞锚定并拉动它们的周围环境时,它们会积极探测环境的硬度。目前的理解是,细胞施加的牵引力主要产生于机械转导位点,称为黏附斑,其大小似乎与细胞对其下衬底施加的力相关,至少在初始阶段是这样。事实上,我们的数据通过直接测量表明,对于较大的基质硬度,牵引力的建立速度更快,并且在黏附斑处测量的应力取决于基质的刚性。我们的结果得到了基于主动凝胶理论的现象模型的支持,表明刚性感应是由起源于细胞骨架的大规模机制介导的,而不是局部机制。我们表明,大规模机械感应导致细胞迁移对刚度梯度的适应性反应。对于刚性的阶跃边界,我们不仅观察到细胞优先向较硬的基质迁移,而且还观察到这种反应在较窄的刚性范围内是最佳的。总之,这些发现为细胞对外界机械线索的反应调节提供了独特的见解,并为基于细胞骨架的刚性感应机制提供了证据。