Hawkins Benjamin G, Lai Nelson, Clague David S
Biomedical Engineering Department, California Polytechnic State University, San Luis Obispo, CA 93407, USA.
Micromachines (Basel). 2020 Apr 9;11(4):391. doi: 10.3390/mi11040391.
The applications of dielectrophoretic (DEP) techniques for the manipulation of cells in a label-free fashion within microfluidic systems continue to grow. However, a limited number of methods exist for making highly sensitive separations that can isolate subtle phenotypic differences within a population of cells. This paper explores efforts to leverage that most compelling aspect of DEP-an actuation force that depends on particle electrical properties-in the background of phenotypic variations in cell size. Several promising approaches, centering around the application of multiple electric fields with spatially mapped magnitude and/or frequencies, are expanding the capability of DEP cell separation.
介电泳(DEP)技术在微流控系统中以无标记方式操纵细胞的应用不断增加。然而,用于进行高灵敏度分离以分离细胞群体中细微表型差异的方法数量有限。本文探讨了在细胞大小表型变化的背景下,利用DEP最引人注目的方面——一种取决于粒子电学性质的驱动力——的努力。围绕应用具有空间映射幅度和/或频率的多个电场的几种有前景的方法,正在扩展DEP细胞分离的能力。