牵引力
牵引(地质)
收缩性
磁镊
生物物理学
粘附
材料科学
磁场
内力
纳米技术
细胞骨架
细胞粘附
焦点粘着
机械
物理
化学
细胞
生物
复合材料
光学镊子
光学
结构工程
生物化学
工程类
量子力学
内分泌学
热力学
古生物学
作者
Nathan J. Sniadecki,A. Anguelouch,Michael T. Yang,Corinne M. Lamb,Zhijun Liu,Stuart B. Kirschner,Yaohua Liu,Daniel H. Reich,Christopher Chen
标识
DOI:10.1073/pnas.0611613104
摘要
Cells respond to mechanical forces whether applied externally or generated internally via the cytoskeleton. To study the cellular response to forces separately, we applied external forces to cells via microfabricated magnetic posts containing cobalt nanowires interspersed among an array of elastomeric posts, which acted as independent sensors to cellular traction forces. A magnetic field induced torque in the nanowires, which deflected the magnetic posts and imparted force to individual adhesions of cells attached to the array. Using this system, we examined the cellular reaction to applied forces and found that applying a step force led to an increase in local focal adhesion size at the site of application but not at nearby nonmagnetic posts. Focal adhesion recruitment was enhanced further when cells were subjected to multiple force actuations within the same time interval. Recording the traction forces in response to such force stimulation revealed two responses: a sudden loss in contractility that occurred within the first minute of stimulation or a gradual decay in contractility over several minutes. For both types of responses, the subcellular distribution of loss in traction forces was not confined to locations near the actuated micropost, nor uniformly across the whole cell, but instead occurred at discrete locations along the cell periphery. Together, these data reveal an important dynamic biological relationship between external and internal forces and demonstrate the utility of this microfabricated system to explore this interaction.
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