机械生物学
机械转化
机制(生物学)
纳米技术
领域(数学)
计算机科学
透视图(图形)
生化工程
神经科学
工程类
生物
材料科学
物理
人工智能
细胞生物学
量子力学
纯数学
数学
作者
Weili Sun,Xiang Gao,Hong Lei,Wei Wang,Yi Cao
标识
DOI:10.1002/advs.202105254
摘要
Over the past decades, increasing evidence has indicated that mechanical loads can regulate the morphogenesis, proliferation, migration, and apoptosis of living cells. Investigations of how cells sense mechanical stimuli or the mechanotransduction mechanism is an active field of biomaterials and biophysics. Gaining a further understanding of mechanical regulation and depicting the mechanotransduction network inside cells require advanced experimental techniques and new theories. In this review, the fundamental principles of various experimental approaches that have been developed to characterize various types and magnitudes of forces experienced at the cellular and subcellular levels are summarized. The broad applications of these techniques are introduced with an emphasis on the difficulties in implementing these techniques in special biological systems. The advantages and disadvantages of each technique are discussed, which can guide readers to choose the most suitable technique for their questions. A perspective on future directions in this field is also provided. It is anticipated that technical advancement can be a driving force for the development of mechanobiology.
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