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Nanoscale characterization of dynamic cellular viscoelasticity by atomic force microscopy with varying measurement parameters

机译:用不同测量参数的原子力显微镜纳米级表征动态蜂窝粘弹性

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摘要

Cell mechanics plays an important role in regulating the physiological activities of cells. The advent of atomic force microscopy (AFM) provides a novel powerful instrument for quantifying the mechanics of single cells at the nanoscale. The applications of AFM in single-cell mechanical assays in the past decade have significantly contributed to the field of cell and molecular biology. However, current AFM-based cellular mechanical studies are commonly carried out with fixed measurement parameters, which provides limited information about the dynamic cellular mechanical behaviors in response to the variable external stimuli. In this work, we utilized AFM to investigate cellular viscoelasticity (portrayed as relaxation time) with varying measurement parameters, including ramp rate and surface dwell time, on both cell lines and primary cells. The experimental results show that the obtained cellular relaxation times are remarkably dependent on the parameter surface dwell time and ramp rate during measurements. Besides, the dependencies to the measurement parameters are variable for different types of cells, which can be potentially used to indicate cell states. The research improves our understanding of single-cell dynamic rheology and provides a novel idea for discriminating different types of cells by AFM-based cellular viscoelastic assays with varying measurement parameters.
机译:细胞力学在调节细胞的生理活性方面发挥着重要作用。原子力显微镜(AFM)的出现提供了一种用于量化纳米级别的单细胞机制的新颖强大仪器。 AFM在过去十年中的单细胞机械测定中的应用显着促成了细胞和分子生物学领域。然而,基于AFM的蜂窝机械研究通常用固定的测量参数进行,其响应于可变外部刺激提供有关动态蜂窝机械行为的有限信息。在这项工作中,我们利用AFM在细胞系和主细胞上调查具有不同测量参数的细胞粘弹性(描绘为放松时间),包括斜坡率和表面停留时间。实验结果表明,所获得的细胞弛豫时间非常取决于测量期间参数表面停留时间和斜坡率。此外,测量参数的依赖关系对于不同类型的小区来说是可变的,这可能是可能用于指示小区状态。该研究提高了我们对单细胞动态流变学的理解,并提供了通过具有不同测量参数的AFM基蜂窝粘弹性测定来区分不同类型细胞的新想法。

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