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Biophysical properties of human breast cancer cells measured using silicon MEMS resonators and atomic force microscopy

机译:使用硅MEMS谐振器和原子力显微镜测量的人类乳腺癌细胞的生物物理特性

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Biophysical studies on individual cells can help to establish the relationship between mechanics and biological function. In the case of cancer, mechanical properties of cells have been linked to metastatic activity and disease progression and can be crucial for understanding cellular physiology and metabolism. In this study, we report measurements of the stiffness of breast cancer cells using a novel silicon MEMS resonant sensor and validated the results with atomic force microscopy (AFM). We measured the mass and stiffness of individual benign (MCF-10A), non-invasive malignant (MCF-7), and highly-invasive malignant (MDA-MB-231) breast cancer cells using the silicon resonant MEMS sensors. The sensor extracts the average stiffness value of the whole cell and allows comparison of stiffness of different cell types. We found differences between the cell lines in both elasticity and viscosity, and confirmed our observations through independent measurements with atomic force microscopy (AFM). Coupled with measurements over time, this approach could lead to a multimodal investigation of both growth and physical properties of single cells. The mechanical property sensitivity and resolution of these pedestal sensors were investigated to understand the significance of the frequency shift during operation. The lowest achievable spring constant and damping constant resolutions have a range of 0.06 to 17.10 mN m(-1) and 1.63 to 1.96 nN s m(-1), respectively, measured across the range of physiological cell mechanical properties.
机译:对单个细胞的生物物理研究可以帮助建立力学与生物学功能之间的关系。在癌症的情况下,细胞的机械特性与转移活性和疾病进展有关,并且对于理解细胞生理学和新陈代谢至关重要。在这项研究中,我们报告了使用新型硅MEMS共振传感器对乳腺癌细胞硬度的测量,并通过原子力显微镜(AFM)验证了结果。我们使用硅共振MEMS传感器测量了单个良性(MCF-10A),非侵入性恶性(MCF-7)和高侵入性恶性(MDA-MB-231)乳腺癌细胞的质量和刚度。传感器提取整个单元的平均刚度值,并允许比较不同单元类型的刚度。我们发现了细胞系之间在弹性和粘度方面的差异,并通过原子力显微镜(AFM)的独立测量证实了我们的观察结果。结合随着时间的测量,这种方法可能导致对单细胞的生长和物理特性的多模式研究。对这些基座传感器的机械性能灵敏度和分辨率进行了研究,以了解操作过程中频移的重要性。在整个生理细胞机械特性范围内测得的最低最低弹簧常数和阻尼常数分辨率分别为0.06至17.10 mN m(-1)和1.63至1.96 nN s m(-1)。

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