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Nanorheology of living cells measured by AFM-based force-distance curves

机译:Nanorheology AFM-based的活细胞测量force-distance曲线

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Mechanobiology aims to establish functional relationships between the mechanical state of a living a cell and its physiology. The acquisition of force-distance curves with an AFM is by far the dominant method to characterize the nanomechanical properties of living cells. However, theoretical simulations have shown that the contact mechanics models used to determine the Young's modulus from a force-distance curve could be off by a factor 5 from its expected value. The semi-quantitative character arises from the lack of a theory that integrates the AFM data, a realistic viscoelastic model of a cell and its finite-thickness. Here, we develop a method to determine the mechanical response of a cell from a force-distance curve. The method incorporates bottom-effect corrections, a power-law rheology model and the deformation history of the cell. It transforms the experimental data into viscoelastic parameters of the cell as a function of the indentation frequency. The quantitative agreement obtained between the experiments performed on living fibroblast cells and the analytical theory supports the use of force-distance curves to measure the nanorheological properties of cells.
机译:力学生物学旨在建立功能的机械状态之间的关系活细胞及其生理学。force-distance曲线AFM是迄今为止占主导地位的方法来描述纳米机械活细胞的性质。然而,理论模拟显示接触力学模型用于确定从force-distance杨氏模量曲线可能是5倍的预期价值。从AFM缺乏相结合的理论数据,一个现实的粘弹性模型的细胞和它的有限厚度。方法确定的力学响应细胞从force-distance曲线。包含bottom-effect修正,a幂律流变学模型和变形细胞的历史。实验数据的粘弹性参数细胞作为缩进的函数频率。在实验进行的生活成纤维细胞和分析理论通过力-距离曲线支持使用测量nanorheological细胞的性质。

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