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Determination of the viscoelastic properties of a single cell cultured on a rigid support by force microscopy

机译:决心的粘弹性性质单细胞培养在一个僵化的武力支持显微镜

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摘要

Understanding the relationship between the mechanical properties of living cells and physiology is a central issue in mechanobiology. Mechanical properties are used as fingerprints of the pathological state of a single cell. The force exerted on a cell is influenced by the stiffness of the solid support needed to culture it. This effect is a consequence of the cell's boundary conditions. It causes a cell to appear with mechanical properties different from their real values. Here we develop a bottom effect viscoelastic theory to determine the viscoelastic response of a cell. The theory transforms a force-distance curve into the cell's Young's modulus, loss modulus, relaxation time or viscosity coefficient with independence of the stiffness of the rigid support. The theory predicts that, for a given indentation, the force exerted on the cell's periphery will be larger than on a perinuclear region. Results based on the use of semi-infinite contact mechanics models introduce large numerical errors in the determination of the mechanical properties. Finite element simulations confirm the theory and define its range of applicability.
机译:理解之间的关系活细胞的力学性能生理学是力学生物学的核心问题。力学性能作为指纹的一个细胞的病理状态。一个细胞上的力的影响固体的刚度需要文化的支持它。边界条件。与机械性能不同于他们真正的价值。粘弹性理论来确定粘弹性细胞的反应。force-distance曲线进入细胞的年轻的模量、损耗模量、弛豫时间或粘度系数的独立性刚性支承的刚度。预计,对于给定的压痕,力对细胞的边缘将会更大比在细胞核周围的地区。使用半无限的接触力学模型介绍大型数值计算中的错误力学性能的测定。有限元模拟理论和确认定义它的适用性的范围。

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