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Mechanomics: an emerging field between biology and biomechanics

机译:机电工程:生物学和生物力学之间的新兴领域

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摘要

Cells sense various in vivo mechanical stimuli, which initiate downstream signaling to mechanical forces. While a body of evidences is presented on the impact of limited mechanical regulators in past decades, the mechanisms how biomechanical responses globally affect cell function need to be addressed. Complexity and diversity of in vivo mechanical clues present distinct patterns of shear flow, tensile stretch, or mechanical compression with various parametric combination of its magnitude, duration, or frequency. Thus, it is required to understand, from the viewpoint of mechanobiology, what mechanical features of cells are, why mechanical properties are different among distinct cell types, and how forces are transduced to downstream biochemical signals. Meanwhile, those in vitro isolated mechanical stimuli are usually coupled together in vivo, suggesting that the different factors that are in effect individually could be canceled out or orchestrated with each other. Evidently, omics analysis, a powerful tool in the field of system biology, is advantageous to combine with mechanobiology and then to map the full-set of mechanically sensitive proteins and transcripts encoded by its genome. This new emerging field, namely mechanomics, makes it possible to elucidate the global responses under systematically-varied mechanical stimuli. This review discusses the current advances in the related fields of mechanomics and elaborates how cells sense external forces and activate the biological responses.
机译:细胞感觉到各种体内机械刺激,这些刺激会向机械力发出下游信号。尽管在过去的几十年中提供了有关有限的机械调节器影响的大量证据,但仍需要解决生物力学响应如何整体影响细胞功能的机制。体内机械线索的复杂性和多样性呈现出剪切流,拉伸或机械压缩的不同模式,并具有其大小,持续时间或频率的各种参数组合。因此,需要从力学生物学的角度理解细胞的机械特性是什么,为什么不同细胞类型之间的机械特性不同,以及如何将力传递给下游生物化学信号。同时,那些体外分离的机械刺激通常在体内耦合在一起,这表明可以单独抵消或协调地单独起作用的不同因素。显然,组学分析是系统生物学领域中的有力工具,有利于与机械生物学相结合,然后绘制出其基因组编码的机械敏感蛋白和转录本的完整图谱。这个新兴的领域,即机械经济学,使得阐明系统变化的机械刺激下的整体响应成为可能。这篇综述讨论了机电工程学相关领域中的最新进展,并阐述了细胞如何感测外力并激活生物学反应。

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