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Optomechanical microrheology of single adherent cancer cells

机译:单个贴壁癌细胞的光机械微流变学

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摘要

There is a close relationship between the mechanical properties of cells and their physiological function. Non-invasive measurements of the physical properties of cells, especially of adherent cells, are challenging to perform. Through a non-contact optical interferometric technique, we measure and combine the phase, amplitude, and frequency of vibrating silicon pedestal micromechanical resonant sensors to quantify the “loss tangent” of individual adherent human colon cancer cells (HT-29). The loss tangent, a dimensionless ratio of viscoelastic energy loss and energy storage — a measure of the viscoelasticity of soft materials, obtained through an optical path length model, was found to be 1.88 ± 0.08 for live cells and 4.32 ± 0.13 for fixed cells, revealing significant changes (p < 0.001) in mechanical properties associated with estimated nanoscale cell membrane fluctuations of 3.86 ± 0.2 nm for live cells and 2.87 ± 0.1 nm for fixed cells. By combining these values with the corresponding two-degree-of-freedom Kelvin-Voigt model, we obtain the elastic stiffness and viscous loss associated with each individual cell rather than estimations from a population. The technique is unique as it decouples the heterogeneity of individual cells in our population and further refines the viscoelastic solution space.
机译:细胞的机械性质与其生理功能之间有着密切的关系。细胞(尤其是贴壁细胞)物理特性的非侵入性测量具有挑战性。通过非接触式光学干涉技术,我们测量并组合了振动的硅基座微机械共振传感器的相位,幅度和频率,以量化单个粘附的人类结肠癌细胞(HT-29)的“损耗角正切”。通过光程长度模型获得的损耗角正切,粘弹性能量损失和能量存储的无量纲比(一种衡量软材料的粘弹性的量度)为1.88 ± 0.08(活细胞)和4.32 ± 0.13对于固定细胞,揭示了机械方面的显着变化(p <0.001)与估计的3.86纳米级细胞膜波动相关的特性xmlns:mml =“ http://www.w3.org/1998/Math/MathML” id =“ M3”溢出=“ scroll”> ± 0.2 nm用于活细胞,而2.87 固定细胞的± 0.1 nm。通过将这些值与相应的两自由度Kelvin-Voigt模型相结合,我们可以获得与每个单个单元格相关的弹性刚度和粘性损失,而不是根据总体进行估算。该技术是独特的,因为它可以消除人口中单个细胞的异质性,并进一步完善粘弹性解空间。

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