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肌动蛋白网络中的力学滞后。

Mechanical hysteresis in actin networks.

机构信息

James Franck Institute, The University of Chicago, Chicago, IL 60637, USA.

出版信息

Soft Matter. 2018 Mar 14;14(11):2052-2058. doi: 10.1039/c7sm01948c.

Abstract

Understanding the response of complex materials to external force is central to fields ranging from materials science to biology. Here, we describe a novel type of mechanical adaptation in cross-linked networks of F-actin, a ubiquitous protein found in eukaryotic cells. We show that shear stress changes the network's nonlinear mechanical response even long after that stress is removed. The duration, magnitude and direction of forcing history all change this mechanical response. While the mechanical hysteresis is long-lived, it can be simply erased by force application in the opposite direction. We further show that the observed mechanical adaptation is consistent with stress-dependent changes in the nematic order of the constituent filaments. Thus, this mechanical hysteresis arises from the changes in non-linear response that originates from stress-induced changes to filament orientation. This demonstrates that F-actin networks can exhibit analog read-write mechanical hysteretic properties, which can be used for adaptation to mechanical stimuli.

摘要

理解复杂材料对外力的响应是从材料科学到生物学等领域的核心问题。在这里,我们描述了一种新型的机械适应性,这种适应性存在于交联的 F-actin 网络中,F-actin 是真核细胞中普遍存在的一种蛋白质。我们表明,剪切力会改变网络的非线性机械响应,即使在这种力移除很久之后。力的历史的持续时间、幅度和方向都会改变这种机械响应。虽然机械滞后时间很长,但通过相反方向的力施加可以简单地将其擦除。我们进一步表明,观察到的机械适应性与组成纤维的各向异性有序性随应力的变化一致。因此,这种机械滞后是由非线性响应的变化引起的,这种变化起源于纤维取向的应力诱导变化。这表明 F-actin 网络可以表现出模拟读写机械滞后特性,可用于适应机械刺激。

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