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Aging-related viscoelasticity variation of tendon stem cells (TSCs) characterized by quartz thickness shear mode (TSM) resonators

机译:以石英厚度剪切模式(TSM)谐振器为特征的腱干细胞(TSC)的老化相关粘弹性变化

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摘要

Aging not only affects the whole body performance but also alters cellular biological properties, including cell proliferation and differentiation. This study was designed to determine the effect of aging on the mechanical properties of tendon stem cells (TSCs), a newly discovered stem cell type in tendons, using quartz thickness shear mode (TSM) resonators. TSCs were isolated from both old and young rats, and allowed to grow to confluency on the surface of TSM resonators. The admittance spectrums of TSM with TSC monolayer were acquired, and a series of complex shear modulus G′ + jG″ as well as average thickness hTSC were calculated based on a two-layer-loading transmission line model (TLM) for TSM resonator sensor. The results showed an overall increase in G′, G″ and hTSC during aging process. Specifically, the storage modulus G′ of aging TSCs was over ten times than that of young, revealing an important increase in stiffness of aging TSCs. Additionally, through phase-contrast and scanning electronic microscopy, it was shown that aging TSCs were large, flat and heterogeneous in morphologies while young TSCs were uniformly elongated. Increased cell size and irregular cell shape might be associated with the dense cytoskeleton organization, which could lead to an increase in both stiffness and viscosity. These results are in agreement with previously published data using different measurement methods, indicating TSM resonator sensor as a promising tool to measure the mechanical properties of cells.
机译:衰老不仅影响全身性能,而且会改变细胞生物学特性,包括细胞增殖和分化。这项研究旨在使用石英厚度剪切模式(TSM)谐振器来确定衰老对肌腱干细胞(TSC)的力学性能的影响,肌腱干细胞是肌腱中新发现的干细胞类型。从老龄和幼年大鼠中分离出TSC,并使其在TSM谐振器表面上生长至汇合。获得了具有单层TSC层的TSM的导纳谱,并基于两层加载传输线模型(TLM)为TSM谐振器传感器计算了一系列复数剪切模量G'+ jG''以及平均厚度hTSC。结果显示,在老化过程中,G',G''和hTSC总体增加。具体地,老化的TSC的储能模量G'是年轻的TSC的储能模量G'的十倍以上,表明老化的TSC的刚度显着增加。此外,通过相差和扫描电子显微镜观察,表明老化的TSC形态大,平坦且异质,而年轻的TSC则均匀地伸长。增大的细胞大小和不规则的细胞形状可能与致密的细胞骨架组织有关,这可能导致硬度和粘度均增加。这些结果与以前使用不同的测量方法发表的数据相吻合,表明TSM谐振器传感器是测量细胞机械性能的有前途的工具。

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