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使用等动力溪-隙电极装置分析细胞介电泳特性

Analysis of Cell Dielectrophoretic Properties Using Isomotive Creek-Gap Electrode Device.

作者信息

Tada Shigeru, Sato Noriko

机构信息

National Defense Academy, Yokosuka 239-8686, Japan.

Graduate School of Applied Science and Engineering, National Defense Academy, Yokosuka 239-8686, Japan.

出版信息

Sensors (Basel). 2024 Nov 30;24(23):7681. doi: 10.3390/s24237681.

Abstract

Various types of dielectrophoresis (DEP) cell separation devices using AC electric fields have been proposed and developed. However, its capability is still limited by a lack of quantitative characterization of the relationship between frequency and force. In the present study, this limitation was addressed by developing a method capable of fast and accurate quantification of the dielectric properties of biological cells. A newly designed Creek-gap electrode device can induce constant DEP forces on cells, realizing the isomotive movement of cells suitable for DEP analysis. The real number part of the Clausius-Mossotti (CM) factor of cells, Re(β), was obtained by simple cell velocimetry together with the numerical three-dimensional (3D) electric field analysis. Human mammary cells, MCF10A, and its cancer cells, MCF7 and MDAMB231, were used as model cells to evaluate the capability of the proposed device. The estimation of Re(β) using the Creek-gap electrode device showed good agreement with previously reported values. Furthermore, the thermal behavior of the Creek-gap electrode device, which is crucial to cell viability, was investigated by adopting micro laser-induced fluorescence (LIF) thermometry using Rhodamine B. The temperature rise in the device was found to be approximately several degrees Celsius at most. The results demonstrate that the proposed method could be a powerful tool for fast and accurate noninvasive measurement of the DEP spectrum and the determination of the dielectric properties of biological cells.

摘要

已经提出并开发了各种使用交流电场的介电泳(DEP)细胞分离装置。然而,其性能仍然受到频率与力之间关系缺乏定量表征的限制。在本研究中,通过开发一种能够快速准确地量化生物细胞介电特性的方法来解决这一限制。一种新设计的间隙电极装置可以在细胞上诱导恒定的DEP力,实现适合DEP分析的细胞等动力运动。通过简单的细胞测速法结合数值三维(3D)电场分析,获得了细胞的克劳修斯 - 莫索蒂(CM)因子的实部,即Re(β)。使用人乳腺细胞MCF10A及其癌细胞MCF7和MDAMB231作为模型细胞来评估所提出装置的性能。使用间隙电极装置对Re(β)的估计与先前报道的值显示出良好的一致性。此外,通过采用基于罗丹明B的微激光诱导荧光(LIF)测温法,研究了间隙电极装置对细胞活力至关重要的热行为。发现该装置中的温度升高最多约为几摄氏度。结果表明,所提出的方法可能是一种用于快速准确地非侵入性测量DEP光谱和确定生物细胞介电特性的强大工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2a5/11644872/c837a808b5c0/sensors-24-07681-g001.jpg

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