首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Cells lying on a bed of microneedles: an approach to isolate mechanical force.
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Cells lying on a bed of microneedles: an approach to isolate mechanical force.

机译:躺在微针床上的细胞:一种隔离机械力的方法。

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摘要

We describe an approach to manipulate and measure mechanical interactions between cells and their underlying substrates by using microfabricated arrays of elastomeric, microneedle-like posts. By controlling the geometry of the posts, we varied the compliance of the substrate while holding other surface properties constant. Cells attached to, spread across, and deflected multiple posts. The deflections of the posts occurred independently of neighboring posts and, therefore, directly reported the subcellular distribution of traction forces. We report two classes of force-supporting adhesions that exhibit distinct force-size relationships. Force increased with size of adhesions for adhesions larger than 1 microm(2), whereas no such correlation existed for smaller adhesions. By controlling cell adhesion on these micromechanical sensors, we showed that cell morphology regulates the magnitude of traction force generated by cells. Cells that were prevented from spreading and flattening against the substrate did not contract in response to stimulation by serum or lysophosphatidic acid, whereas spread cells did. Contractility in the unspread cells was rescued by expression of constitutively active RhoA. Together, these findings demonstrate a coordination of biochemical and mechanical signals to regulate cell adhesion and mechanics, and they introduce the use of arrays of mechanically isolated sensors to manipulate and measure the mechanical interactions of cells.
机译:我们描述了一种通过使用弹性体,微针状柱的微阵列来操纵和测量细胞及其下层基底之间的机械相互作用的方法。通过控制柱的几何形状,我们在保持其他表面特性不变的同时,改变了基板的柔度。单元附着,分散并偏转多个柱。立柱的偏转独立于相邻立柱发生,因此直接报告了牵引力的亚细胞分布。我们报告了两种类型的力支持粘附,表现出不同的力-大小关系。对于大于1 microm(2)的粘着力,力随粘着力的大小而增加,而对于较小的粘着力则不存在这种相关性。通过控制这些微机械传感器上的细胞粘附,我们表明细胞形态调节了细胞产生的牵引力的大小。受到血清或溶血磷脂酸的刺激,被阻止扩散到基底上的细胞不会收缩,而被扩散的细胞会收缩。未表达细胞的收缩性通过组成型活性RhoA的表达得以挽救。总之,这些发现证明了生物化学和机械信号的协调以调节细胞粘附和力学,并且它们引入了使用机械隔离传感器阵列来操纵和测量细胞的机械相互作用的方法。

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