Anal Chem. 2018 Oct 2;90(19):11461-11469. doi: 10.1021/acs.analchem.8b02628. Epub 2018 Sep 19.
Microfluidic systems have been developed widely in scaled-down processes of laboratory techniques, but they are usually limited in achieving stand-alone functionalities. It is highly desirable to exploit an integrated microfluidic device with multiple capabilities such as cell separation, single-cell trapping, and cell manipulation. Herein, we reported a microfluidic platform integrated with actuation electrodes, for separating cells and microbeads, and bipolar electrodes, for trapping, rotating, and propelling single cells and microbeads. The separation of cells and microbeads can be first achieved by deflective dielectrophoresis (DEP) barriers. Trapping experiments with yeast cells and polystyrene (PS) microbeads suspended in aqueous solutions with different conductivities were then conducted, showing that both cells and particles can be trapped at the center of wireless electrodes by negative DEP force. Upon application of a rotating electric field, yeast cells exhibit translational movement along the electrode edges, and self-rotation is seen at an array of bipolar electrodes when electrorotational torque and traveling wave DEP force are applied on the cells. The current approach allows us to switch the propulsion and rotation direction of cells by varying the frequency of the applied electric field. Beyond the achievements of single-cell manipulation, this system permits effective control of several particles or cells simultaneously. The integration of parallel sorting and single trapping stages within a microfluidic chip enables the prospect of high-throughput cell separation, single trapping, and large-scale cell locomotion and rotation in a noninvasive and disposable format, showing great potential in single-cell analysis, targeted drug delivery, and surgery.
微流控系统在实验室技术的缩微过程中得到了广泛的发展,但它们通常在实现独立功能方面受到限制。非常希望利用具有多种功能的集成微流控装置,例如细胞分离、单细胞捕获和细胞操作。在此,我们报道了一种集成了激励电极的微流控平台,用于分离细胞和微珠,以及双极电极,用于捕获、旋转和推进单细胞和微珠。通过可变形介电泳(DEP)势垒可以首先实现细胞和微珠的分离。然后在不同电导率的水溶液中进行酵母细胞和聚苯乙烯(PS)微珠的捕获实验,结果表明,负 DEP 力可将细胞和颗粒都捕获在无线电极的中心。当在细胞上施加旋转电场时,酵母细胞沿电极边缘表现出平移运动,并且当在细胞上施加电动旋转扭矩和行波 DEP 力时,在一系列双极电极上可以看到自旋转。目前的方法允许我们通过改变施加电场的频率来切换细胞的推进和旋转方向。除了实现单细胞操作之外,该系统还允许同时有效地控制多个颗粒或细胞。微流控芯片中并行分选和单个捕获阶段的集成使得高通量细胞分离、单细胞捕获以及大规模细胞运动和旋转成为可能,并且在单细胞分析、靶向药物输送和手术中具有很大的应用潜力。