利用厚度剪切模式(TSM)共振传感器监测细胞黏附和表征细胞粘弹性

Fang Li, Qing-Ming Wang, J.H.-C. Wang
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引用次数: 0

摘要

细胞粘附和力学性能对生理和病理过程至关重要。细胞粘附状态的调节参与了形态发生、创面愈合、细胞化生、细胞增殖和肿瘤细胞转移过程中的组织重塑。细胞力学特性在机械力作用下的细胞变形和其他细胞功能(如运动和细胞分裂)中起着至关重要的作用。由于细胞骨架在细胞结构和性质上的主导地位,细胞粘弹性特性的测定为研究细胞骨架在细胞生长、基因表达、蛋白质合成、分化、迁移和凋亡等过程中发挥重要作用提供了有效途径。在本研究中,建立了一个功能性生物传感器系统,该系统由声波生物传感器阵列、细胞培养、微型培养箱、阻抗分析仪和计算机组成,用于监测受控生物条件下细胞的粘附和粘弹性特性。基于细胞与衬底的粘附状态,构建了包括厚度剪切模式石英谐振器衬底、细胞-衬底界面层和细胞培养基中的细胞层在内的多层声波传感器模型,该模型可用于预测生物传感器的谐振频率和电阻变化与界面层和细胞层物理性质之间的关系。实验研究了细胞黏附随细胞播种密度变化的动态过程。利用理论模型,将谐振腔近共振导纳理论值与实测光谱拟合,提取了电池层的粘弹性特性。所得结果与其他方法得到的数据吻合良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monitoring cell adhesion and characterizing cell viscoelasticity by using thickness shear mode (TSM) resonate sensor
Cell adhesion and mechanical properties are critical to physiological and pathological processes. Regulation of cell adhesion states is involved in tissue remodeling during morphogenesis and wound healing, cellular metaplasia, cell proliferation and tumor cell metastasis. Cell mechanical properties play an essential role in cell deformation under mechanical forces and other cell functions such as locomotion and cytokinesis. Because of the dominance of the cytoskeleton in cell structure and properties, measurement of the cell viscoelastic properties provides an effective approach to look into cytoskeleton, which plays an important role in cell growth, gene expression, protein synthesis, differentiation, migration and apoptosis. In this study, a functional biosensor system, which consists of acoustic wave biosensor array, cell culture, a mini-incubator, an impedance analyzer and a computer, was established to monitor cell adhesion and viscoelastic properties under controlled biological conditions. A multilayer acoustic wave sensor model that includes the thickness shear mode quartz resonator substrate, a cell-substrate interfacial layer and a cell layer in cell culture medium was constructed based on the state of cell adhesion to the substrate, which can be applied to predict the relationship between the resonant frequency and resistance change of the biosensor and physical properties of the interfacial layer and the cell layer. Experimentally, the dynamic processes of cell adhesion as function of cell seeding densities have been investigated. Using the theoretical model, the viscoelastic properties of cell layer are extracted by fitting the theoretical values of the resonator admittance near resonance with the measured spectrum. The results agree very well with the data obtained by other techniques.
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