A Low-Cost Electroporator for Genetically Modifying Social Amoeba Dictyostelium Discoideum

Michael C. Cauchy, Ali A. Khan, Y. Artemenko, D. Dunn
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Abstract

The social amoeba Dictyostelium discoideum is a commonly used eukaryotic model organism for the study of cell division, chemotaxis, differentiation, phagocytosis, and other cellular processes. Electroporation is an effective and efficient method for delivering plasmid DNA into D. discoideum, an invaluable tool for studying intracellular processes. The technology is readily available but often prohibitively expensive. Although several custom-built electroporation devices have been developed, none deliver the specific 8.5kV/cm exponentially decaying waveform required for D. discoideum transformation. The present study examined whether a simple, inexpensive device can be built to produce this waveform through a simple resistor-capacitor (RC) circuit. A pulse generator RC circuit was built incorporating inexpensive electronic components and a 3D printed cuvette chamber. All four possible combinations of custom-built and commercial pulse generators and custom-built and commercial cuvette chambers were used to transform D. discoideum cells with a plasmid encoding green fluorescent protein (GFP). There were no significant differences in the number of surviving cells immediately following or 24 hours post-transformation between the systems. All combinations of custom-built and commercial systems achieved comparably high transformation efficiency shown by percent of cells expressing GFP six days after the transformation. Since the waveform-specific electroporation system we present here can be built by non-experts with easily obtainable materials and 3D printing, we envision this device to benefit investigators in areas with low research budgets and educators in multiple STEM fields.
一种低成本的基因改造社会性变形虫盘状齿形变形虫的电穿孔器
群居变形虫盘形盘形变形虫是一种常用的真核模式生物,用于研究细胞分裂、趋化、分化、吞噬和其他细胞过程。电穿孔是一种有效的将质粒DNA送入盘状棘球蚴的方法,是研究细胞内过程的宝贵工具。这项技术很容易获得,但往往过于昂贵。虽然已经开发了几种定制的电穿孔装置,但没有一种能够提供D. disideum转化所需的特定8.5kV/cm指数衰减波形。目前的研究考察了是否可以制造一种简单、廉价的设备,通过简单的电阻-电容(RC)电路产生这种波形。结合廉价的电子元件和3D打印的试管室,构建了脉冲发生器RC电路。使用定制和商用脉冲发生器以及定制和商用试管室的所有四种可能组合,用编码绿色荧光蛋白(GFP)的质粒转化盘状蝶细胞。在转化后立即或24小时内,两种系统之间的存活细胞数量无显著差异。所有定制和商业系统的组合都取得了相当高的转化效率,转化后6天表达GFP的细胞百分比显示。由于我们在这里展示的波形特定电穿孔系统可以由非专家使用容易获得的材料和3D打印构建,我们设想该设备将使研究预算低的领域的研究人员和多个STEM领域的教育工作者受益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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