Fabrication of Nano- and Micro-Structured PPy Electrode and its Application to Electroporation to Cell

IF 0.9 Q4 AUTOMATION & CONTROL SYSTEMS
Saki Amaki, Yohei Kato, Tomomi Sudo, Takahiro Kono, Arata Kaneko
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Abstract

Electroporation using microstructured electrodes, which generate a localized high electric field, allows molecules (genes) to be introduced into cells; however, there are some technical issues with the fabrication process and material in terms of cytotoxicity and cost. In this study, polypyrrole (PPy), a biocompatible and conductive polymer, is nano- and micro-structured for an electrode of electroporation by electrochemical polymerization. Nano- and micro-scale dots of PPy are generated by a specific pulse waveform of applied voltage in a considerably low concentration of pyrrole (monomer) solution. The conductivity of PPy is changed from 4 to 16 S/cm by dopant concentration with a range of 0.025 M to 0.2 M. It is demonstrated that electroporation using the PPy and ITO electrodes introduce test agent of molecules (Propidium Iodide) into HeLa cells, where 10 and 50 V of pulse voltage is applied. The electroporation using nano-scale dots of PPy electrodes provides a 40% higher introduction rate than that of the micro-dots of PPy electrodes. The introduction rate in electroporation using the nano-scale dots of PPy can be maintained above 95% regardless of the application time of voltage, whereas that of the micro-scale dots of PPy electrodes increases with the application time. It is reasonable to assume that the nano- and micro-structured PPy electrodes are effective in electroporation, as the introduction rates on these PPy electrodes are higher than that of the ITO electrode. However, the cell viability in the electroporation using the nano-scale of PPy electrodes decreases by approximately 30% with application time. Both the introduction rate and cell viability slightly decrease with the conductivity of the PPy electrode; therefore, they are dominated by surface morphologies of the PPy electrode and applied voltage as compared to that of electrode conductivity. Nevertheless, it is demonstrated that the nano- and micro-structured PPy electrodes improve the efficiency of electroporation owing to the locally concentrated electric field.
纳米微结构聚吡啶电极的制备及其在细胞电穿孔中的应用
电穿孔使用微结构电极,产生局部高电场,允许分子(基因)被引入细胞;然而,制备工艺和材料在细胞毒性和成本方面存在一些技术问题。在本研究中,聚吡咯(PPy)是一种具有生物相容性和导电性的聚合物,其纳米结构和微观结构通过电化学聚合用于电穿孔电极。通过在相当低浓度的吡咯(单体)溶液中施加特定脉冲波形的电压,可以产生纳米和微尺度的聚吡咯点。在0.025 ~ 0.2 M的掺杂浓度范围内,聚吡啶的电导率从4 S/cm变化到16 S/cm。结果表明,在10和50 V脉冲电压下,聚吡啶和ITO电极的电穿孔将测试剂分子(碘化丙啶)引入HeLa细胞。采用聚吡咯纳米级电极点的电穿孔比采用聚吡咯纳米级电极点的电穿孔引入率高40%。无论施加电压的时间长短,聚吡啶纳米级电极的电穿孔引入率都能保持在95%以上,而聚吡啶微尺度电极的电穿孔引入率则随施加电压的时间增加而增加。可以合理地假设纳米和微结构的聚吡啶电极在电穿孔中是有效的,因为这些聚吡啶电极上的引入率高于ITO电极。然而,使用纳米级PPy电极的电穿孔细胞活力随着使用时间的增加而下降约30%。引入率和细胞活力随PPy电极的电导率略有下降;因此,与电极电导率相比,它们主要受PPy电极的表面形貌和施加电压的影响。然而,由于局部电场的集中,纳米结构和微观结构的聚吡啶电极提高了电穿孔效率。
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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来源期刊
International Journal of Automation Technology
International Journal of Automation Technology AUTOMATION & CONTROL SYSTEMS-
CiteScore
2.10
自引率
36.40%
发文量
96
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