Department of Agricultural and Biological Engineering, Purdue University, West Lafayette, IN 47907, USA.
J Control Release. 2010 May 21;144(1):91-100. doi: 10.1016/j.jconrel.2010.01.030. Epub 2010 Jan 29.
Genetic modification of cells is a critical step involved in many cell therapy and gene therapy protocols. In these applications, cell samples of large volume (10(8)-10(9)cells) are often processed for transfection. This poses new challenges for current transfection methods and practices. Here we present a novel flow-through electroporation method for delivery of genes into cells at high flow rates (up to approximately 20 mL/min) based on disposable microfluidic chips, a syringe pump, and a low-cost direct current (DC) power supply that provides a constant voltage. By eliminating pulse generators used in conventional electroporation, we dramatically lowered the cost of the apparatus and improved the stability and consistency of the electroporation field for long-time operation. We tested the delivery of pEFGP-C1 plasmids encoding enhanced green fluorescent protein into Chinese hamster ovary (CHO-K1) cells in the devices of various dimensions and geometries. Cells were mixed with plasmids and then flowed through a fluidic channel continuously while a constant voltage was established across the device. Together with the applied voltage, the geometry and dimensions of the fluidic channel determined the electrical parameters of the electroporation. With the optimal design, approximately 75% of the viable CHO cells were transfected after the procedure. We also generalize the guidelines for scaling up these flow-through electroporation devices. We envision that this technique will serve as a generic and low-cost tool for a variety of clinical applications requiring large volume of transfected cells.
细胞的遗传修饰是许多细胞治疗和基因治疗方案中涉及的关键步骤。在这些应用中,通常需要处理大量的细胞样本(10(8)-10(9)个细胞)进行转染。这给当前的转染方法和实践带来了新的挑战。在这里,我们提出了一种新的基于一次性微流控芯片、注射器泵和低成本直流(DC)电源的高通量电穿孔方法,用于在高流速(高达约 20 毫升/分钟)下将基因递送到细胞中。通过消除传统电穿孔中使用的脉冲发生器,我们大大降低了仪器的成本,并提高了电穿孔场的稳定性和一致性,以实现长时间运行。我们在各种尺寸和几何形状的设备中测试了编码增强型绿色荧光蛋白的 pEFGP-C1 质粒递送到中国仓鼠卵巢(CHO-K1)细胞中的情况。细胞与质粒混合后,在建立跨设备恒压的情况下连续流过流道。与施加的电压一起,流道的几何形状和尺寸决定了电穿孔的电气参数。通过最佳设计,大约 75%的活 CHO 细胞在该过程后被转染。我们还概括了放大这些高通量电穿孔设备的指导原则。我们设想,这项技术将成为各种需要大量转染细胞的临床应用的通用且低成本工具。