钙粘蛋白和生长因子受体:钙粘蛋白连接处的配体选择性机械开关。

IF 3.3 3区 生物学 Q3 CELL BIOLOGY
Vinh Vu, Brendan Sullivan, Evan Hebner, Zainab Rahil, Yubo Zou, Deborah Leckband
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引用次数: 0

摘要

本研究探讨了影响细胞间力学和多细胞组织的嗜异性和嗜同性钙粘蛋白粘附差异的可能机制。结果表明,亲同性钙粘蛋白连接选择性地激活力转导,从而产生的信号传导和机械转导振幅与钙粘蛋白结合亲和力无关。上皮(E-)和神经(N-)钙粘蛋白与不同的生长因子合作,机械地激活力转导级联。先前的研究结果表明,e-钙粘蛋白和表皮生长因子受体在细胞间连接处形成力敏感复合物。本研究结果表明,N-cadherin力转导的重建需要N-cadherin和成纤维细胞生长因子受体的共同表达。机械测量进一步表明,亲同性连接启动受体酪氨酸激酶依赖的力转导级联,但亲异性钙粘蛋白配体不能激活信号传导或产生典型的机械转导特征。亲异性和亲同性钙粘蛋白粘附的机械转导之间的全或无对比取代了钙粘蛋白粘附强度的差异。这种机械选择性影响细胞在钙粘蛋白底物上的扩散和牵引力的产生。亲同型连接似乎是选择性地解锁钙粘蛋白机械转导的关键。这些发现可能调和钙粘蛋白识别和细胞力学在多细胞组装组织中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cadherins and Growth Factor Receptors: ligand selective mechano-switches at cadherin junctions.

This study investigated possible mechanisms underlying differences between heterophilic and homophilic cadherin adhesions that influence intercellular mechanics and multicellular organization. Results suggest that homophilic cadherin ligation selectively activates force-transduction, such that resulting signaling and mechano-transduction amplitudes are independent of cadherin binding affinities. Epithelial (E-) and neural (N-) cadherin cooperate with distinct growth factors to mechanically activate force-transduction cascades. Prior results demonstrated that E-cadherin and epidermal growth factor receptor form force-sensitive complexes at intercellular junctions. Here, results show that the reconstitution of N-cadherin force transduction required the co-expression of N-cadherin and fibroblast growth factor receptor. Mechanical measurements further demonstrated that homophilic ligation initiates receptor tyrosine kinase-dependent force transduction cascades, but heterophilic cadherin ligands fail to activate signaling or generate stereotypical mechano-transduction signatures. The all-or-nothing contrast between mechano-transduction by heterophilic versus homophilic cadherin adhesions supersedes differences in cadherin adhesion strength. This mechano-selectivity impacts cell spreading and traction generation on cadherin substrates. Homophilic ligation appears to be a key that selectively unlocks cadherin mechano-transduction. These findings may reconcile the roles of cadherin recognition and cell mechanics in the organization of multicellular assemblies.

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来源期刊
Journal of cell science
Journal of cell science 生物-细胞生物学
CiteScore
7.30
自引率
2.50%
发文量
393
审稿时长
1.4 months
期刊介绍: Journal of Cell Science publishes cutting-edge science, encompassing all aspects of cell biology.
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