Huang Hayden, Kamm Roger D, Lee Richard T
Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02139, USA.
Am J Physiol Cell Physiol. 2004 Jul;287(1):C1-11. doi: 10.1152/ajpcell.00559.2003.
Cells face not only a complex biochemical environment but also a diverse biomechanical environment. How cells respond to variations in mechanical forces is critical in homeostasis and many diseases. The mechanisms by which mechanical forces lead to eventual biochemical and molecular responses remain undefined, and unraveling this mystery will undoubtedly provide new insight into strengthening bone, growing cartilage, improving cardiac contractility, and constructing tissues for artificial organs. In this article we review the physical bases underlying the mechanotransduction process, techniques used to apply controlled mechanical stresses on living cells and tissues to probe mechanotransduction, and some of the important lessons that we are learning from mechanical stimulation of cells with precisely controlled forces.
细胞不仅面临复杂的生化环境,还面临多样的生物力学环境。细胞如何对机械力的变化做出反应,在体内平衡和许多疾病中至关重要。机械力导致最终生化和分子反应的机制仍不明确,解开这一谜团无疑将为增强骨骼、生长软骨、改善心脏收缩力以及构建人造器官组织提供新的见解。在本文中,我们回顾了机械转导过程的物理基础、用于对活细胞和组织施加可控机械应力以探究机械转导的技术,以及我们从精确控制力量对细胞进行机械刺激中学到的一些重要经验教训。