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E-cadherin-mediated force transduction signals regulate global cell mechanics

机译:电子钙粘蛋白介导的力转导信号调节整体细胞力学

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摘要

This report elucidates an E-cadherin-based force-transduction pathway that triggers changes in cell mechanics through a mechanism requiring epidermal growth factor receptor (EGFR), phosphoinositide 3-kinase (PI3K), and the downstream formation of new integrin adhesions. This mechanism operates in addition to local cytoskeletal remodeling triggered by conformational changes in the E-cadherin-associated protein alpha-catenin, at sites of mechanical perturbation. Studies using magnetic twisting cytometry (MTC), together with traction force microscopy (TFM) and confocal imaging identified force-activated E-cadherin-specific signals that integrate cadherin force transduction, integrin activation and cell contractility. EGFR is required for the downstream activation of PI3K and myosin-II-dependent cell stiffening. Our findings also demonstrated that alpha-catenin-dependent cytoskeletal remodeling at perturbed E-cadherin adhesions does not require cell stiffening. These results broaden the repertoire of E-cadherin-based force transduction mechanisms, and define the force-sensitive signaling network underlying the mechano-chemical integration of spatially segregated adhesion receptors.
机译:该报告阐明了基于E-钙粘着蛋白的力传导途径,该途径通过需要表皮生长因子受体(EGFR),磷酸肌醇3激酶(PI3K)的机制以及新整合素粘附的下游形成来触发细胞力学变化。除了在机械扰动部位,E-钙粘蛋白相关蛋白α-连环蛋白的构象变化触发局部细胞骨架重塑外,该机制还起作用。使用磁扭细胞术(MTC),牵引力显微镜(TFM)和共聚焦成像的研究确定了整合了钙粘蛋白力传导,整联蛋白激活和细胞收缩力的受力激活的E-钙粘蛋白特异性信号。 EGFR是PI3K下游激活和肌球蛋白II依赖性细胞硬化所必需的。我们的发现还表明,在扰动的E-钙粘着蛋白粘附时,α-catenin依赖的细胞骨架重塑不需要细胞硬化。这些结果拓宽了基于E-钙粘着蛋白的力转导机制的范围,并定义了空间分隔的粘附受体的机械化学整合基础的力敏信号网络。

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