The effect of loading rate on the measurement of cellular viscoelasticity properties with atomic force microscopy

Wenxue Wang, Yuechao Wang, B. Liu, Lianqing Liu, Bo Wang
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Abstract

Organisms are composed by cells, and the cells can also reflect the physiology of creatures. The composition of a single cell and its cytoskeletal structure can be reflected by the mechanical properties of the cell. The cellular mechanical properties are correlated to the biological functions of the cell and its physiological activities. Therefore, establishing the mathematical model for the mechanical properties of single cells could provide the foundation for analyzing and regulating the physiological state of cells. In our previous work, we established a dynamical mathematical model with the viscose and elastic properties of single cells as the system parameters of the cellular system. The mathematical model can characterize the stressrelaxation phenomenon of a single cell, which is caused by an atomic force microscope (AFM). However, in this model, the effect of the loading rate of the AFM cantilever was neglected and all the stress-relaxation curves needed to be measured at a constant loading rate, in case that different loading rates would cause errors in the stress-relaxation curves. In this study, we discussed the effect of the loading rate on the measurement of cellular viscoelasticity properties with AFM. We clearly illustrated that the cellular stress-relaxation curves won't be effected by the loading rate of AFM when the loading rate is higher than a threshold. The stress-relaxation curves with the loading rate which is higher than the threshold can be used to extract viscoelasticity parameters more accurately.
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加载速率对原子力显微镜测定细胞粘弹性的影响
生物体是由细胞组成的,细胞也能反映生物的生理机能。单个细胞的组成及其细胞骨架结构可以通过细胞的力学性能来反映。细胞的力学性质与细胞的生物学功能和生理活动密切相关。因此,建立单细胞力学特性的数学模型可以为分析和调控细胞的生理状态提供基础。在我们之前的工作中,我们建立了一个以单个细胞的粘弹性特性作为细胞系统参数的动力学数学模型。该数学模型可以描述原子力显微镜(AFM)下单个细胞的应力松弛现象。然而,在该模型中,忽略了AFM悬臂梁加载速率的影响,所有应力松弛曲线都需要在恒定加载速率下测量,以免不同的加载速率会导致应力松弛曲线出现误差。在本研究中,我们讨论了加载速率对AFM测量细胞粘弹性性能的影响。结果表明,当AFM加载速率大于某一阈值时,细胞应力松弛曲线不受AFM加载速率的影响。加载速率大于阈值时的应力松弛曲线可以更准确地提取粘弹性参数。
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