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FRET measurements of cell-traction forces and nano-scale clustering of adhesion ligands varied by substrate stiffness

机译:FRET测量的细胞牵引力和粘附配体的纳米级簇因基材刚度而异

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The mechanical properties of cell adhesion substrates regulate cell phenotype, but the mechanism of this relation is currently unclear. It may involve the magnitude of traction force applied by the cell, and/or the ability of the cells to rearrange the cell adhesion molecules presented from the material. In this study, we describe a FRET technique that can be used to evaluate the mechanics of cell-material interactions at the molecular level and simultaneously quantify the cell-based nanoscale rearrangement of the material itself. We found that these events depended on the mechanical rigidity of the adhesion substrate. Furthermore, both the proliferation and differentiation of preosteoblasts (MC3T3-E1) correlated to the magnitude of force that cells generate to cluster the cell adhesion ligands, but not the extent of ligand clustering. Together, these data demonstrate the utility of FRET in analyzing cell-material interactions, and suggest that regulation of phenotype with substrate stiffness is related to alterations in cellular traction forces.
机译:细胞粘附底物的机械性能调节细胞表型,但这种关系的机制目前尚不清楚。它可能涉及细胞施加的牵引力的大小,和/或细胞重新排列由材料提供的细胞粘附分子的能力。在这项研究中,我们描述了一种FRET技术,该技术可用于在分子水平上评估细胞与材料相互作用的力学,同时量化材料本身基于细胞的纳米级重排。我们发现这些事件取决于粘附基材的机械刚度。此外,前成骨细胞(MC3T3-E1)的增殖和分化都与细胞产生的使细胞粘附配体成簇的力的大小相关,而与配体成簇的程度无关。总之,这些数据证明了FRET在分析细胞与材料之间的相互作用中的效用,并表明表型与底物刚度的调节与细胞牵引力的改变有关。

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