机械生物学
机械转化
弹性(物理)
托换
纳米技术
调节器
细胞力学
生物物理学
计算生物学
生物
细胞生物学
细胞
物理
材料科学
细胞骨架
工程类
生物化学
基因
土木工程
热力学
作者
Amy E. M. Beedle,Sergi Garcia-Manyes
标识
DOI:10.1038/s41578-022-00488-z
摘要
In addition to biochemical signals and genetic considerations, mechanical forces are rapidly emerging as a master regulator of human physiology. Yet the molecular mechanisms that regulate force-induced functionalities across a wide range of scales, encompassing the cell, tissue or organ levels, are comparatively not so well understood. With the advent, development and refining of single molecule nanomechanical techniques, enabling to exquisitely probe the conformational dynamics of individual proteins under the effect of a calibrated force, we have begun to acquire a comprehensive knowledge on the rich plethora of physicochemical principles that regulate the elasticity of single proteins. Here we review the major advances underpinning our current understanding of how the elasticity of single proteins regulates mechanosensing and mechanotransduction. We discuss the present limitations and future challenges of such a prolific and burgeoning field.
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