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Molecular-Scale Tools for Studying Mechanotransduction

机译:用于学习机械调节的分子尺度工具

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Mechanical stimuli are known to be potent regulators of the form and function of cells and organisms. Although biological regulation has classically been understood in terms of principles from solution biochemistry, advancements in many fields have led to the development of a suite of techniques that are able to reveal the interplay between mechanical loading and changes in the biochemical properties of proteins in systems ranging from single molecules to living organisms. Here, we review these techniques and highlight the emergence of a new molecular-scale understanding of the mechanisms mediating the detection and response of cells to mechanical stimuli, a process termed mechanotransduction. Specifically, we focus on the role of subcellular adhesion structures in sensing the stiffness of the surrounding environment because this process is pertinent to applications in tissue engineering as well the onset of several mechanosensitive disease states, including cancer.
机译:已知机械刺激是细胞和生物的形式和功能的有效调节因子。 尽管在解决方案生物化学的原则方面,生物调节已经典型地理解,但许多领域的进步导致了一种能够揭示机械加载与系统测距中蛋白质生化特性之间的相互作用之间的技术的发展 从单一分子到生物体。 在这里,我们审查了这些技术,并突出了对介导细胞检测和响应的机制的新分子规模理解的出现,该方法称为机械刺激。 具体而言,我们专注于亚细胞粘附结构在感测周围环境的刚度方面的作用,因为该方法与组织工程中的应用以及包括癌症的若干机制疾病状态的暂存以及疾病的应用。

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