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Continuous-flow multi-pulse electroporation at low DC voltages by microfluidic flipping of the voltage space topology

机译:通过电压空间拓扑的微流体翻转在低直流电压下进行连续流多脉冲电穿孔

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摘要

Concerns over biosafety, cost, and carrying capacity of viral vectors have accelerated research into physical techniques for gene delivery such as electroporation and mechanoporation. Advances in microfabrication have made it possible to create high electric fields over microscales, resulting in more efficient DNA delivery and higher cell viability. Continuous-flow microfluidic methods are typically more suitable for cellular therapies where a large number of cells need to be transfected under sterile conditions. However, the existing continuous-flow designs used to generate multiple pulses either require expensive peripherals such as high-voltage (>400 V) sources or function generators, or result in reduced cell viability due to the proximity of the cells to the electrodes. In this paper, we report a continuous-flow microfluidic device whose channel geometry reduces instrumentation demands and minimizes cellular toxicity. Our design can generate multiple pulses of high DC electric field strength using significantly lower voltages (15–60 V) than previous designs. The cells flow along a serpentine channel that repeatedly flips the cells between a cathode and an anode at high throughput. The cells must flow through a constriction each time they pass from an anode to a cathode, exposing them to high electric field strength for short durations of time (the “pulse-width”). A conductive biocompatible poly-aniline hydrogel network formed in situ is used to apply the DC voltage without bringing the metal electrodes close to the cells, further sheltering cells from the already low voltage electrodes. The device was used to electroporate multiple cell lines using electric field strengths between 700 and 800 V/cm with transfection efficiencies superior than previous flow-through designs.
机译:对病毒载体的生物安全性,成本和携带能力的担忧加速了对物理技术的研究,这些技术用于基因传递,例如电穿孔和机械穿孔。微细加工的进步使得在微尺度上产生高电场成为可能,从而导致更有效的DNA传递和更高的细胞活力。连续流微流体方法通常更适合需要在无菌条件下转染大量细胞的细胞疗法。但是,用于产生多个脉冲的现有连续流设计要么需要昂贵的外围设备(例如高压(> 400 V)电源或函数发生器),要么由于电池靠近电极而导致电池活力降低。在本文中,我们报告了一种连续流动的微流体装置,其通道几何形状降低了仪器要求,并最大程度地降低了细胞毒性。我们的设计可以使用比以前的设计低得多的电压(15–60 V)生成多个具有高直流电场强度的脉冲。电池沿着蜿蜒的通道流动,该通道以高通量反复翻转阴极和阳极之间的电池。电池每次从阳极流向阴极时,都必须流经缩颈,使它们在短时间内(“脉冲宽度”)暴露于高电场强度。原位形成的导电生物相容性聚苯胺水凝胶网络用于施加DC电压,而不会使金属电极靠近电池,从而使电池免受已经低电压的电极的影响。该设备用于电穿孔多个细胞系,电场强度在700至800 V / cm之间,转染效率优于以前的流通设计。

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