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A primary current distribution model of a novel micro-electroporation channel configuration

机译:新型微电穿孔通道结构的主要电流分布模型

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摘要

Traditional macro and micro-electroporation devices utilize facing electrodes, which generate electric fields inversely proportional to their separation distance. Although the separation distances in micro-electroporation devices are significantly smaller than those in macro-electroporation devices, they are limited by cell size. Because of this, significant potential differences are required to induce electroporation. These potential differences are often large enough to cause water electrolysis, resulting in electrode depletion and bubble formation, both of which adversely affect the electroporation process. Here, we present a theoretical study of a novel micro-electroporation channel composed of an electrolyte flowing over a series of adjacent electrodes separated by infinitesimally small insulators. Application of a small, non-electrolysis inducing potential difference between the adjacent electrodes results in radially-varying electric fields that emanate from these insulators, causing cells flowing through the channel to experience a pulsed electric field. This eliminates the need for a pulse generator, making a minimal power source (such as a battery) the only electrical equipment that is needed. A non-dimensional primary current distribution model of the novel micro-electroporation channel shows that decreasing the channel height results in an exponential increase in the electric field magnitude, and that cells experience exponentially greater electric field magnitudes the closer they are to the channel walls. Finally, dimensional primary current distribution models of two potential applications, water sterilization and cell transfection, demonstrate the practical feasibility of the novel micro-electroporation channel.
机译:传统的宏电穿孔和微电穿孔设备使用相对的电极,这些电极会产生与其分离距离成反比的电场。尽管在微电穿孔设备中的分离距离明显小于在大电穿孔设备中的分离距离,但是它们受到细胞大小的限制。因此,需要显着的电势差来诱导电穿孔。这些电势差通常大到足以引起水电解,导致电极耗竭和气泡形成,这两者都会对电穿孔过程产生不利影响。在这里,我们提出了一种新型的微电穿孔通道的理论研究,该通道由一种电解质流过一系列由无限小的绝缘子隔开的相邻电极组成。在相邻电极之间施加小的非电解感应电势差会导致从这些绝缘体发出的径向变化的电场,从而导致流过通道的细胞受到脉冲电场的影响。这消除了对脉冲发生器的需要,从而使最小的电源(例如电池)成为唯一需要的电气设备。新型微电穿孔通道的无量纲初级电流分布模型表明,降低通道高度会导致电场强度呈指数级增长,并且细胞越靠近通道壁,其电场强度就呈指数级增长。最后,两个潜在应用(水消毒和细胞转染)的三维一次电流分布模型证明了新型微电穿孔通道的实际可行性。

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