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Mechanical behavior in living cells consistent with the tensegrity model

机译:与张力模型一致的活细胞中的机械行为

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摘要

Alternative models of cell mechanics depict the living cell as a simple mechanical continuum, porous filament gel, tensed cortical membrane, or tensegrity network that maintains a stabilizing prestress through incorporation of discrete structural elements that bear compression. Real-time microscopic analysis of cells containing GFP-labeled microtubules and associated mitochondria revealed that living cells behave like discrete structures composed of an interconnected network of actin microfilaments and microtubules when mechanical stresses are applied to cell surface integrin receptors. Quantitation of cell tractional forces and cellular prestress by using traction force microscopy confirmed that microtubules bear compression and are responsible for a significant portion of the cytoskeletal prestress that determines cell shape stability under conditions in which myosin light chain phosphorylation and intracellular calcium remained unchanged. Quantitative measurements of both static and dynamic mechanical behaviors in cells also were consistent with specific a priori predictions of the tensegrity model. These findings suggest that tensegrity represents a unified model of cell mechanics that may help to explain how mechanical behaviors emerge through collective interactions among different cytoskeletal filaments and extracellular adhesions in living cells.
机译:细胞力学的替代模型将活细胞描述为简单的机械连续体,多孔长丝凝胶,张紧的皮膜或张力网络,通过并入承受压力的离散结构元素来维持稳定的预应力。对包含GFP标记的微管和相关线粒体的细胞进行的实时显微镜分析显示,当对细胞表面整合素受体施加机械应力时,活细胞的行为就像是由肌动蛋白微丝和微管的互连网络组成的离散结构。通过使用牵引力显微镜对细胞牵引力和细胞预应力进行定量证实,微管具有压缩作用,并且在确定肌球蛋白轻链磷酸化和细胞内钙保持不变的条件下,决定细胞形状稳定性的细胞骨架预应力的重要部分。对细胞中静态和动态力学行为的定量测量也与张力模型的特定先验预测一致。这些发现表明,张力代表了细胞力学的统一模型,可能有助于解释机械行为是如何通过不同细胞骨架细丝之间的集体相互作用以及活细胞中的细胞外粘附而出现的。

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