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肌动蛋白张力纤维在拉伸下的反应和适应

Actin Stress Fibers Response and Adaptation under Stretch.

机构信息

Cellular Mechanics Laboratory, Physics Department, SMAT-C, Universidad de Santiago de Chile, Santiago 9170124, Chile.

Institut du Cerveau et de la Moelle Épinière, Hôpital Pitié Salpêtrière, 47 bd de l'Hôpital, 75013 Paris, France.

出版信息

Int J Mol Sci. 2022 May 3;23(9):5095. doi: 10.3390/ijms23095095.

Abstract

One of the many effects of soft tissues under mechanical solicitation in the cellular damage produced by highly localized strain. Here, we study the response of peripheral stress fibers (SFs) to external stretch in mammalian cells, plated onto deformable micropatterned substrates. A local fluorescence analysis reveals that an adaptation response is observed at the vicinity of the focal adhesion sites (FAs) due to its mechanosensor function. The response depends on the type of mechanical stress, from a Maxwell-type material in compression to a complex scenario in extension, where a mechanotransduction and a self-healing process takes place in order to prevent the induced severing of the SF. A model is proposed to take into account the effect of the applied stretch on the mechanics of the SF, from which relevant parameters of the healing process are obtained. In contrast, the repair of the actin bundle occurs at the weak point of the SF and depends on the amount of applied strain. As a result, the SFs display strain-softening features due to the incorporation of new actin material into the bundle. In contrast, the response under compression shows a reorganization with a constant actin material suggesting a gliding process of the SFs by the myosin II motors.

摘要

在细胞损伤中,软组织在机械刺激下会产生多种效应,其中包括高度局域应变。在这里,我们研究了哺乳动物细胞在可变形微图案化基底上受到外部拉伸时周围的应力纤维 (SF) 的反应。局部荧光分析表明,由于其作为机械感受器的功能,在黏着斑 (FA) 附近观察到适应反应。这种反应取决于机械应力的类型,从压缩的麦克斯韦型材料到拉伸的复杂情况,其中发生机械转导和自我修复过程,以防止 SF 诱导的断裂。提出了一个模型来考虑施加的拉伸对 SF 力学的影响,从中获得了修复过程的相关参数。相比之下,肌动球蛋白束的修复发生在 SF 的薄弱点,并取决于施加的应变量。因此,SF 由于将新的肌动蛋白材料纳入束中而表现出应变软化的特征。相比之下,在压缩下的响应显示出具有恒定肌动蛋白材料的重排,这表明 SF 通过肌球蛋白 II 马达进行滑行过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a73c/9101353/1ce327482fe7/ijms-23-05095-g001.jpg

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