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作为机械传感器的粘着斑:双弹簧模型

Focal adhesions as mechanosensors: the two-spring model.

作者信息

Schwarz Ulrich S, Erdmann Thorsten, Bischofs Ilka B

机构信息

University of Heidelberg, Im Neuenheimer Feld 293, D-69120 Heidelberg, Germany; Max Planck Institute of Colloids and Interfaces, D-14424 Potsdam, Germany.

出版信息

Biosystems. 2006 Feb-Mar;83(2-3):225-32. doi: 10.1016/j.biosystems.2005.05.019. Epub 2005 Oct 19.

Abstract

Adhesion-dependent cells actively sense the mechanical properties of their environment through mechanotransductory processes at focal adhesions, which are integrin-based contacts connecting the extracellular matrix to the cytoskeleton. Here we present first steps towards a quantitative understanding of focal adhesions as mechanosensors. It has been shown experimentally that high levels of force are related to growth of and signaling at focal adhesions. In particular, activation of the small GTPase Rho through focal adhesions leads to the formation of stress fibers. Here we discuss one way in which force might regulate the internal state of focal adhesions, namely by modulating the internal rupture dynamics of focal adhesions. A simple two-spring model shows that the stiffer the environment, the more efficient cellular force is built up at focal adhesions by molecular motors interacting with the actin filaments.

摘要

依赖黏附的细胞通过黏着斑处的机械转导过程积极感知其周围环境的力学特性,黏着斑是基于整合素的连接细胞外基质与细胞骨架的接触点。在此,我们朝着将黏着斑定量理解为机械传感器迈出了第一步。实验表明,高水平的力与黏着斑的生长和信号传导有关。特别是,通过黏着斑激活小GTP酶Rho会导致应力纤维的形成。在此,我们讨论力可能调节黏着斑内部状态的一种方式,即通过调节黏着斑的内部破裂动力学。一个简单的双弹簧模型表明,环境越硬,分子马达与肌动蛋白丝相互作用在黏着斑处建立细胞力就越有效。

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