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Analysis of Dynamic Processes in Single-Cell Electroporation and Their Effects on Parameter Selection Based on the Finite-Element Model

机译:基于有限元模型的单细胞电穿孔动态过程及其对参数选择的影响

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Pulsed electric fields have recently been the focus of considerable attention because of their potential application in biomedicine. However, their practical clinical applications are limited by poor understanding of the interaction mechanism between pulsed electric fields and cells, particularly in the process of electroporation and its effect on parameter selection. This paper established a multishelled dielectric model based on finite elements to simulate and analyze the processes involved in electroporation. In particular, the processes include the dynamic development of the pore radius and electroporation region: the distribution of recoverable, nonrecoverable, and nonelectroporation areas on the cell; and the influence of pulse parameters on varying degrees of electroporation. Results showed that membrane conductivity, pore density, transmembrane potential, and distribution of pore radii are functions of time and position on the cell. The electroporation areas were divided into recoverable, nonrecoverable, and no-electroporation pores. For 10~mu text{s} , 1.5-kV/cm pulse was observed in the regions exposed to sufficiently high transmembrane voltage (1 V), electroporation occurred, membrane conductivity and pore density (up to 10^{mathrm {16}}/text{m}^{mathrm {2}}) rapidly increased with time, and electroporation areas increased gradually and were mainly distributed in the range 0°–70° (recoverable pore [0°, 35°], nonrecoverable pore [35°, 70°], and no-electroporation pore [70°, 90°]). Electric field strength was the major factor that induced electroporation, particularly in the recoverable pore, but it had minimal effect on pore expansion. However, pulse duration affects the nonrecoverable pore, such that the high-intensity wide pulse is more useful in the field of irreversible electroporation. The high-intensity short pulse can increase permeability and maintain cell viability.
机译:脉冲电场由于其在生物医学中的潜在应用,近来已成为相当关注的焦点。然而,由于对脉冲电场与细胞之间相互作用机理的了解不足,特别是在电穿孔过程及其对参数选择的影响方面,它们的实际临床应用受到限制。本文建立了基于有限元的多壳介电模型,以模拟和分析电穿孔过程。特别地,这些过程包括孔半径和电穿孔区域的动态发展:细胞上可回收,不可回收和非电穿孔区域的分布;以及脉冲参数对不同程度电穿孔的影响。结果表明,膜的电导率,孔密度,跨膜电位和孔半径分布是时间和细胞位置的函数。电穿孔区域分为可恢复的孔,不可恢复的孔和无电孔。对于10μm的文本,在暴露于足够高的跨膜电压(1 V)的区域中观察到1.5-kV / cm的脉冲,发生了电穿孔,膜电导率和孔密度(高达10 ^ {mathrm {16}} / text {m} ^ {mathrm {2}})随时间迅速增加,电穿孔区域逐渐增加,并且主要分布在0°–70°范围内(可恢复孔[0°,35°],不可恢复孔[35] °,70°]和无电穿孔(70°,90°])。电场强度是引起电穿孔的主要因素,特别是在可回收的孔中,但对孔膨胀的影响很小。但是,脉冲持续时间会影响不可恢复的孔,因此高强度宽脉冲在不可逆电穿孔领域中更有用。高强度短脉冲可以增加通透性并维持细胞活力。

著录项

  • 来源
    《Plasma Science, IEEE Transactions on》 |2017年第5期|889-900|共12页
  • 作者单位

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

    State Key Laboratory of Power Transmission Equipment and System Security and New Technology, School of Electrical Engineering, Chongqing University, Chongqing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cells (biology); Conductivity; Dielectrics; Permittivity; Electric shock; Electrodes; Electric potential;

    机译:细胞(生物学);电导率;介电常数;介电常数;电击;电极;电势;

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