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(微)调控机械微环境。

(Micro)managing the mechanical microenvironment.

机构信息

Department of Mechanical & Industrial Engineering, University of Toronto, 5 King's College Road, Toronto, Ontario M5S 3G8, Canada.

出版信息

Integr Biol (Camb). 2011 Oct;3(10):959-71. doi: 10.1039/c1ib00056j. Epub 2011 Sep 19.

Abstract

Mechanical forces are critical components of the cellular microenvironment and play a pivotal role in driving cellular processes in vivo. Dissecting cellular responses to mechanical forces is challenging, as even "simple" mechanical stimulation in vitro can cause multiple interdependent changes in the cellular microenvironment. These stimuli include solid deformation, fluid flows, altered physical and chemical surface features, and a complex transfer of loads between the various interacting components of a biological culture system. The active mechanical and biochemical responses of cells to these stimuli in generating internal forces, reorganizing cellular structures, and initiating intracellular signals that specify cell fate and remodel the surrounding environment further complicates cellular response to mechanical forces. Moreover, cells present a non-linear response to combinations of mechanical forces, materials, chemicals, surface features, matrix properties and other effectors. Microtechnology-based approaches to these challenges can yield key insights into the mechanical nature of cellular behaviour, by decoupling stimulation parameters; enabling multimodal control over combinations of stimuli; and increasing experimental throughput to systematically probe cellular response. In this critical review, we briefly discuss the complexities inherent in the mechanical stimulation of cells; survey and critically assess the applications of present microtechnologies in the field of experimental mechanobiology; and explore opportunities and possibilities to use these tools to obtain a deeper understanding of mechanical interactions between cells and their environment.

摘要

机械力是细胞微环境的关键组成部分,在驱动体内细胞过程中起着关键作用。剖析细胞对机械力的响应具有挑战性,因为即使是体外“简单”的机械刺激也会引起细胞微环境的多种相互依赖的变化。这些刺激包括固体变形、流体流动、物理和化学表面特征的改变,以及生物培养系统中各种相互作用的组成部分之间复杂的负荷传递。细胞对这些刺激产生内力、重组细胞结构并启动细胞内信号,从而指定细胞命运并重塑周围环境,从而积极响应机械力。此外,细胞对机械力、材料、化学物质、表面特征、基质特性和其他效应物的组合呈非线性响应。基于微技术的方法可以通过解耦刺激参数来解决这些挑战,从而为细胞行为的机械性质提供关键见解;实现对刺激组合的多模态控制;并提高实验通量以系统地探测细胞响应。在这篇重要的综述中,我们简要讨论了细胞机械刺激中固有的复杂性;调查和批判性评估了目前微技术在实验生物力学领域的应用;并探讨了利用这些工具获得对细胞与其环境之间机械相互作用更深入理解的机会和可能性。

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