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细胞内非平衡波动应力表明了非线性细胞力学特性如何适应微环境刚性。

Intracellular nonequilibrium fluctuating stresses indicate how nonlinear cellular mechanical properties adapt to microenvironmental rigidity.

机构信息

Department of Bioengineering, Bethlehem, Pennsylvania, 18015, USA.

Department of Materials Science and Engineering, Bethlehem, Pennsylvania, 18015, USA.

出版信息

Sci Rep. 2020 Apr 3;10(1):5902. doi: 10.1038/s41598-020-62567-x.

Abstract

Living cells are known to be in thermodynamically nonequilibrium, which is largely brought about by intracellular molecular motors. The motors consume chemical energies to generate stresses and reorganize the cytoskeleton for the cell to move and divide. However, since there has been a lack of direct measurements characterizing intracellular stresses, questions remained unanswered on the intricacies of how cells use such stresses to regulate their internal mechanical integrity in different microenvironments. This report describes a new experimental approach by which we reveal an environmental rigidity-dependent intracellular stiffness that increases with intracellular stress - a revelation obtained, surprisingly, from a correlation between the fluctuations in cellular stiffness and that of intracellular stresses. More surprisingly, by varying two distinct parameters, environmental rigidity and motor protein activities, we observe that the stiffness-stress relationship follows the same curve. This finding provides some insight into the intricacies by suggesting that cells can regulate their responses to their mechanical microenvironment by adjusting their intracellular stress.

摘要

活细胞被认为处于热力学非平衡状态,这主要是由细胞内分子马达引起的。这些马达消耗化学能产生应力,并重新组织细胞骨架,使细胞能够移动和分裂。然而,由于缺乏直接测量细胞内应力的方法,细胞如何利用这些应力来调节其在不同微环境中的内部机械完整性的问题仍未得到解答。本报告描述了一种新的实验方法,通过该方法我们揭示了一种依赖于环境刚性的细胞内刚度,该刚度随细胞内应力而增加——这一发现令人惊讶地来自于细胞硬度波动与细胞内应力波动之间的相关性。更令人惊讶的是,通过改变两个不同的参数,环境刚性和马达蛋白活性,我们观察到硬度-应力关系遵循相同的曲线。这一发现为细胞如何通过调节细胞内应力来调节对其机械微环境的反应提供了一些见解。

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