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In vivo quantitative analysis of Talin turnover in response to force

机译:塔林响应力的体内定量分析

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Cell adhesion to the extracellular matrix (ECM) allows cells to form and maintain three-dimensional tissue architecture. Cell–ECM adhesions are stabilized upon exposure to mechanical force. In this study, we used quantitative imaging and mathematical modeling to gain mechanistic insight into how integrin-based adhesions respond to increased and decreased mechanical forces. A critical means of regulating integrin-based adhesion is provided by modulating the turnover of integrin and its adhesion complex (integrin adhesion complex [IAC]). The turnover of the IAC component Talin, a known mechanosensor, was analyzed using fluorescence recovery after photobleaching. Experiments were carried out in live, intact flies in genetic backgrounds that increased or decreased the force applied on sites of adhesion. This analysis showed that when force is elevated, the rate of assembly of new adhesions increases such that cell–ECM adhesion is stabilized. Moreover, under conditions of decreased force, the overall rate of turnover, but not the proportion of adhesion complex components undergoing turnover, increases. Using point mutations, we identify the key functional domains of Talin that mediate its response to force. Finally, by fitting a mathematical model to the data, we uncover the mechanisms that mediate the stabilization of ECM-based adhesion during development.
机译:细胞粘附至细胞外基质(ECM)可使细胞形成并维持三维组织结构。细胞– ECM粘附力在暴露于机械力时稳定。在这项研究中,我们使用了定量成像和数学建模来获得有关基于整联蛋白的粘附如何响应机械力的增加和减少的机制的机械见解。通过调节整联蛋白及其粘附复合物(整联蛋白粘附复合物[IAC])的周转提供了调节基于整联蛋白的粘附的关键手段。 IAC组分Talin(一种已知的机械传感器)的周转率是使用光漂白后的荧光回收率进行分析的。实验是在具有遗传背景的完整活体实蝇中进行的,这些实蝇可增加或减少施加在粘着部位的力。该分析表明,当力增加时,新粘附的组装率增加,从而使细胞-ECM粘附稳定。此外,在力减小的条件下,总的周转率增加,但粘附复合物组分经历周转的比例却没有增加。使用点突变,我们确定了塔林的关键功能域,该域介导了塔林对力的反应。最后,通过对数据拟合数学模型,我们发现了在开发过程中介导基于ECM的粘附稳定的机制。

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