Nishikawa Daiki, Seki Yoshinori, Tada Shigeru
Department of Applied Physics, National Defense Academy, Hashirimizu 1-10-20, Yokosuka 239-0802, Kanagawa, Japan.
Sensors (Basel). 2024 Dec 31;25(1):185. doi: 10.3390/s25010185.
Dielectrophoresis (DEP) cell separation technology is an effective means of separating target cells which are only marginally present in a wide variety of cells. To develop highly efficient cell separation devices, detailed analysis of the nonuniform electric field's intensity distribution within the device is needed, as it affects separation performance. Here we analytically expressed the distributions of the electric field and DEP force in a parallel-plate cell separation DEP device by employing electrostatic analysis through the Fourier series method. The solution was approximated by extrapolating a novel approximate equation as a boundary condition for the potential between adjacent fingers of interdigitated electrodes and changing the underlying differential equation into a solvable form. The distributions of the potential and electric fields obtained by the analytical solution were compared with those from numerical simulations using finite element method software to verify their accuracy. As a result, it was found that the two agreed well, and the analytical solution was obtained with good accuracy. Three-dimensional fluorescence imaging analysis was performed using live non-tumorigenic human mammary (MCF10A) cells. The distribution of cell clusters adsorbed on the interdigitated electrodes was compared with the analytically obtained distribution of the DEP force, and the mechanism underlying cell adsorption on the electrode surface was discussed. Furthermore, parametric analysis using the width and spacing of these electrodes as variables revealed that spacing is crucial for determining DEP force. The results suggested that for cell separation devices using interdigitated electrodes, optimization by adjusting electrode spacing could significantly enhance device performance.
介电泳(DEP)细胞分离技术是一种分离目标细胞的有效手段,这些目标细胞在各种各样的细胞中仅占少量。为了开发高效的细胞分离装置,需要详细分析装置内非均匀电场的强度分布,因为它会影响分离性能。在这里,我们通过傅里叶级数方法进行静电分析,解析地表达了平行板细胞分离DEP装置中电场和DEP力的分布。通过外推一个新的近似方程作为叉指电极相邻指之间电位的边界条件,并将基础微分方程转化为可求解的形式,得到了近似解。将解析解得到的电位和电场分布与使用有限元方法软件进行数值模拟得到的结果进行比较,以验证其准确性。结果发现两者吻合良好,且解析解具有较高的精度。使用活的非致瘤性人乳腺(MCF10A)细胞进行了三维荧光成像分析。将吸附在叉指电极上的细胞团簇分布与解析得到的DEP力分布进行比较,并讨论了细胞吸附在电极表面的机制。此外,以这些电极的宽度和间距为变量进行参数分析,结果表明间距对于确定DEP力至关重要。结果表明,对于使用叉指电极的细胞分离装置,通过调整电极间距进行优化可以显著提高装置性能。