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Prestressed cells are prone to cytoskeleton failures under localized shear strain: an experimental demonstration on muscle precursor cells

机译:预应力细胞在局部剪切应变下易于发生细胞骨架衰竭:肌肉前体细胞的实验证明

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We report on a wavelet based space-scale decomposition method for analyzing the response of living muscle precursor cells (C2C12 myoblasts and myotubes) upon sharp indentation with an AFM cantilever and quantifying their aptitude to sustain such a local shear strain. Beyond global mechanical parameters which are currently used as markers of cell contractility, we emphasize the necessity of characterizing more closely the local fluctuations of the shear relaxation modulus as they carry important clues about the mechanisms of cytoskeleton strain release. Rupture events encountered during fixed velocity shear strain are interpreted as local disruptions of the actin cytoskeleton structures, the strongest (brittle) ones being produced by the tighter and stiffer stress fibers or actin agglomerates. These local strain induced failures are important characteristics of the resilience of these cells, and their aptitude to maintain their shape via a quick recovery from local strains. This study focuses on the perinuclear region because it can be considered as a master mechanical organizing center of these muscle precursor cells. Using this wavelet-based method, we combine the global and local approaches for a comparative analysis of the mechanical parameters of normal myoblasts, myotubes and myoblasts treated with actomyosin cytoskeleton disruptive agents (ATP depletion, blebbistatin).
机译:我们报告了一种基于小波的空间尺度分解方法,用于分析活的肌肉前体细胞(C2C12成肌细胞和肌管)在用AFM悬臂尖锐压痕后的反应,并量化它们维持这种局部剪切应变的能力。除了当前用作细胞收缩性标志物的整体力学参数之外,我们强调必须更紧密地表征剪切松弛模量的局部波动,因为它们带有有关细胞骨架应变释放机理的重要线索。在固定速度剪切应变过程中遇到的破裂事件被解释为肌动蛋白细胞骨架结构的局部破坏,其中最强的(脆性)是由更紧,更硬的应力纤维或肌动蛋白附聚物产生的。这些局部应变诱导的衰竭是这些细胞的回弹力的重要特征,以及它们通过从局部应变中快速恢复来保持其形状的能力。这项研究集中在核周区域,因为它可以被视为这些肌肉前体细胞的主要机械组织中心。使用这种基于小波的方法,我们结合了全局和局部方法,对用肌动球蛋白细胞骨架破坏剂(ATP耗竭,blebbistatin)处理的正常成肌细胞,成肌细胞和成肌细胞的力学参数进行了比较分析。

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