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A time-dependent phenomenological model for cell mechano-sensing

机译:细胞机械感测的时变现象学模型

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Adherent cells normally apply forces as a generic means of sensing and responding to the mechanical nature of their surrounding environment. How these forces vary as a function of the extracellular rigidity is critical to understanding the regulatory functions that drive important phenomena such as wound healing or muscle contraction. In recognition of this fact, experiments have been conducted to understand cell rigidity-sensing properties under known conditions of the extracellular environment, opening new possibilities for modeling this active behavior. In this work, we provide a physics-based constitutive model taking into account the main structural components of the cell to reproduce its most significant contractile properties such as the traction forces exerted as a function of time and the extracellular stiffness. This model shows how the interplay between the time-dependent response of the acto-myosin contractile system and the elastic response of the cell components determines the mechano-sensing behavior of single cells.
机译:贴壁细胞通常施加力作为感测和响应其周围环境机械特性的通用手段。这些力如何根据细胞外刚性变化如何,对于理解驱动重要现象(例如伤口愈合或肌肉收缩)的调节功能至关重要。认识到这一事实,已经进行了实验以了解在细胞外环境的已知条件下的细胞刚度感测特性,从而为对该活跃行为进行建模提供了新的可能性。在这项工作中,我们提供了一个基于物理的本构模型,其中考虑了细胞的主要结构成分以重现其最显着的收缩特性,例如作为时间和细胞外刚度的函数施加的牵引力。该模型显示了肌动蛋白-肌球蛋白收缩系统的时间依赖性响应与细胞组分的弹性响应之间的相互作用如何决定单个细胞的机械感测行为。

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