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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >Microscale Interrogation of 3D Tissue Mechanics
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Microscale Interrogation of 3D Tissue Mechanics

机译:3D组织力学的微观询问

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Cells in vivo live in a complex microenvironment composed of the extracellular matrix (ECM) and other cells. Growing evidence suggests that the mechanical interaction between the cells and their microenvironment is of critical importance to their behaviors under both normal and diseased conditions, such as migration, differentiation, and proliferation. The study of tissue mechanics in the past two decades, including the assessment of both mechanical properties and mechanical stresses of the extracellular microenvironment, has greatly enriched our knowledge about how cells interact with their mechanical environment. Tissue mechanical properties are often heterogeneous and sometimes anisotropic, which makes them difficult to obtain from macroscale bulk measurements. Mechanical stresses were first measured for cells cultured on two-dimensional (2D) surfaces with well-defined mechanical properties. While 2D measurements are relatively straightforward and efficient, and they have provided us with valuable knowledge on cell-ECM interactions, that knowledge may not be directly applicable to in vivo systems. Hence, the measurement of tissue stresses in a more physiologically relevant three-dimensional (3D) environment is required. In this mini review, we will summarize and discuss recent developments in using optical, magnetic, genetic, and mechanical approaches to interrogate 3D tissue stresses and mechanical properties at the microscale.
机译:体内细胞生活在由细胞外基质(ECM)和其他细胞组成的复杂微环境中。越来越多的证据表明,细胞与微环境之间的机械相互作用对于它们在正常和患病条件下的行为(例如迁移,分化和增殖)至关重要。在过去的二十年中,对组织力学的研究,包括对细胞外微环境的力学性质和机械应力的评估,极大地丰富了我们对细胞如何与其机械环境相互作用的知识。组织的机械性能通常是异质的,有时是各向异性的,这使得它们很难从大规模的体积测量中获得。首先测量具有明确机械性能的二维(2D)表面上培养的细胞的机械应力。尽管2D测量相对简单有效,并且为我们提供了有关细胞ECM相互作用的有价值的知识,但这些知识可能无法直接应用于体内系统。因此,需要在更生理相关的三维(3D)环境中测量组织应力。在这个小型综述中,我们将总结和讨论使用光学,磁性,遗传和机械方法在微观尺度上询问3D组织应力和机械性能的最新进展。

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