Department of Mechanical Engineering, The University of Hong Kong, Pok Fu Lam 999077, Hong Kong, China.
Advanced Biomedical Instrumentation Centre, Hong Kong Science Park, Shatin, New Territories 999077, Hong Kong, China.
Nano Lett. 2024 Nov 13;24(45):14522-14530. doi: 10.1021/acs.nanolett.4c05005. Epub 2024 Nov 4.
The mechanical and electrical properties of cells serve as critical indicators of their physiological and pathological state. Currently, distinct setups are required to measure the electrical and mechanical responses of cells. In addition, most existing methods such as optical trapping (OT) and atomic force microscopy (AFM) are labor-intensive, expensive, and low-throughput. Here, we developed a microdevice that integrates automated cell trapping, deformation, and electric impedance spectroscopy to overcome these limitations. Our device enables parallel aspiration of tens of trapped cells in a highly scalable manner by simply adjusting the applied pressures, allowing for rapid probing of the dynamic viscoelastic properties of cells. Furthermore, embedded microelectrodes enable concurrent investigations of the electrical impedance of the cells. Through testing on different cell types, our platform demonstrated superior capabilities in comprehensive cell characterization and phenotyping, highlighting its great potential as a versatile tool for single cell analysis, drug screening, and disease detection.
细胞的力学和电学特性是其生理和病理状态的关键指标。目前,需要使用不同的设备来测量细胞的电和机械响应。此外,大多数现有的方法,如光学捕获(OT)和原子力显微镜(AFM),既费时费力,又昂贵,而且通量低。在这里,我们开发了一种微设备,它集成了自动细胞捕获、变形和电阻抗谱,以克服这些限制。我们的设备通过简单地调整施加的压力,能够以高度可扩展的方式并行抽吸数十个被捕获的细胞,从而能够快速探测细胞的动态粘弹性特性。此外,嵌入式微电极能够同时研究细胞的电阻抗。通过对不同类型的细胞进行测试,我们的平台在全面的细胞表征和表型分析方面表现出了卓越的能力,这凸显了它作为单细胞分析、药物筛选和疾病检测的多功能工具的巨大潜力。