Peeters Emiel A G, Oomens Cees W J, Bouten Carlijn V C, Bader Dan L, Baaijens Frank P T
Eindhoven University of Technology, Department of Biomedical Engineering, P.O. Box 513, Building W-hoog 4.123, 5600 MB Eindhoven, The Netherlands.
J Biomech Eng. 2005 Apr;127(2):237-43. doi: 10.1115/1.1865198.
The viscoelastic properties of single, attached C2C12 myoblasts were measured using a recently developed cell loading device. The device allows global compression of an attached cell, while simultaneously measuring the associated forces. The viscoelastic properties were examined by performing a series of dynamic experiments over two frequency decades (0.1-10 Hz) and at a range of axial strains (approximately 10-40%). Confocal laser scanning microscopy was used to visualize the cell during these experiments. To analyze the experimentally obtained force-deformation curves, a nonlinear viscoelastic model was developed. The nonlinear viscoelastic model was able to describe the complete series of dynamic experiments using only a single set of parameters, yielding an elastic modulus of 2120 +/- 900 Pa for the elastic spring, an elastic modulus of 1960 +/- 1350 for the nonlinear spring, and a relaxation time constant of 0.3 +/- 0.12 s. To our knowledge, it is the first time that the global viscoelastic properties of attached cells have been quantified over such a wide range of strains. Furthermore, the experiments were performed under optimal environmental conditions and the results are, therefore, believed to reflect the viscoelastic mechanical behavior of cells, such as would be present in vivo.
使用一种最新开发的细胞加载装置测量单个附着的C2C12成肌细胞的粘弹性特性。该装置允许对附着细胞进行整体压缩,同时测量相关的力。通过在两个频率十年(0.1 - 10 Hz)范围内以及一系列轴向应变(约10 - 40%)下进行一系列动态实验来研究粘弹性特性。在这些实验过程中,使用共聚焦激光扫描显微镜观察细胞。为了分析实验获得的力 - 变形曲线,开发了一种非线性粘弹性模型。该非线性粘弹性模型仅使用一组参数就能描述整个系列的动态实验,弹性弹簧的弹性模量为2120±900 Pa,非线性弹簧的弹性模量为1960±1350,松弛时间常数为0.3±0.12 s。据我们所知,这是首次在如此宽的应变范围内对附着细胞的整体粘弹性特性进行量化。此外,实验是在最佳环境条件下进行的,因此,相信结果反映了细胞的粘弹性力学行为,就像在体内存在的那样。