Department of Physics, Yale University, New Haven, CT 06520, USA.
Proc Natl Acad Sci U S A. 2013 Jan 15;110(3):842-7. doi: 10.1073/pnas.1217279110. Epub 2012 Dec 31.
Cell-cell and cell-matrix adhesions play essential roles in the function of tissues. There is growing evidence for the importance of cross talk between these two adhesion types, yet little is known about the impact of these interactions on the mechanical coupling of cells to the extracellular matrix (ECM). Here, we combine experiment and theory to reveal how intercellular adhesions modulate forces transmitted to the ECM. In the absence of cadherin-based adhesions, primary mouse keratinocytes within a colony appear to act independently, with significant traction forces extending throughout the colony. In contrast, with strong cadherin-based adhesions, keratinocytes in a cohesive colony localize traction forces to the colony periphery. Through genetic or antibody-mediated loss of cadherin expression or function, we show that cadherin-based adhesions are essential for this mechanical cooperativity. A minimal physical model in which cell-cell adhesions modulate the physical cohesion between contractile cells is sufficient to recreate the spatial rearrangement of traction forces observed experimentally with varying strength of cadherin-based adhesions. This work defines the importance of cadherin-based cell-cell adhesions in coordinating mechanical activity of epithelial cells and has implications for the mechanical regulation of epithelial tissues during development, homeostasis, and disease.
细胞-细胞和细胞-基质黏附在组织功能中起着至关重要的作用。越来越多的证据表明这两种黏附类型之间的串扰很重要,但对于这些相互作用对细胞与细胞外基质(ECM)机械偶联的影响知之甚少。在这里,我们结合实验和理论揭示了细胞间黏附如何调节传递到 ECM 的力。在没有基于钙黏蛋白的黏附的情况下,细胞簇内的原代小鼠角质形成细胞似乎独立起作用,整个细胞簇内有明显的牵引力。相比之下,在具有强基于钙黏蛋白的黏附的情况下,黏附性细胞簇中的角质形成细胞将牵引力定位在细胞簇的外围。通过基因或抗体介导的钙黏蛋白表达或功能丧失,我们表明基于钙黏蛋白的黏附对于这种机械协同作用至关重要。一个最小的物理模型,其中细胞-细胞黏附调节收缩细胞之间的物理内聚力,足以重现实验中观察到的基于钙黏蛋白的黏附强度变化时牵引力的空间重排。这项工作定义了基于钙黏蛋白的细胞-细胞黏附在协调上皮细胞机械活性方面的重要性,并对上皮组织在发育、稳态和疾病期间的机械调节具有重要意义。