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Reversible stress softening of actin networks

机译:肌动蛋白网络的可逆应力软化

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摘要

The mechanical properties of cells play an essential role in numerous physiological processes. Organized networks of semiflexible actin filaments determine cell stiffness and transmit force during mechanotransduction, cytokinesis, cell motility and other cellular shape changes. Although numerous actin-binding proteins have been identified that organize networks, the mechanical properties of actin networks with physiological architectures and concentrations have been difficult to measure quantitatively. Studies of mechanical properties in vitro have found that crosslinked networks of actin filaments formed in solution exhibit stress stiffening arising from the entropic elasticity of individual filaments or crosslinkers resisting extension. Here we report reversible stress-softening behaviour in actin networks reconstituted in vitro that suggests a critical role for filaments resisting compression. Using a modified atomic force microscope to probe dendritic actin networks (like those formed in the lamellipodia of motile cells), we observe stress stiffening followed by a regime of reversible stress softening at higher loads. This softening behaviour can be explained by elastic buckling of individual filaments under compression that avoids catastrophic fracture of the network. The observation of both stress stiffening and softening suggests a complex interplay between entropic and enthalpic elasticity in determining the mechanical properties of actin networks.
机译:细胞的机械性质在许多生理过程中起着至关重要的作用。半柔性肌动蛋白丝的组织网络决定了机械转导,胞质分裂,细胞运动性和其他细胞形态变化过程中的细胞硬度和传递力。尽管已经鉴定出许多组织网络的肌动蛋白结合蛋白,但是具有生理结构和浓度的肌动蛋白网络的机械性质很难定量测量。体外力学性能的研究发现,溶液中形成的肌动蛋白丝的交联网络表现出应力增强,这是由于单个丝或交联剂的抗延展性而产生的熵弹性引起的-。在这里我们报告肌动蛋白网络在体外重构中的可逆应力软化行为,这表明细丝抵抗压缩的关键作用。使用改进的原子力显微镜探测树突状肌动蛋白网络(就像在运动细胞的层状脂膜中形成的那些),我们观察到应力变强,然后在较高载荷下发生可逆的应力软化。这种软化行为可以通过避免压缩过程中网络发生灾难性断裂而在压缩下使单个细丝弹性屈曲来解释。应力变硬和变软的观察表明,在确定肌动蛋白网络的机械性能时,熵和焓弹性之间存在复杂的相互作用。

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