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Modification of dielectric characteristics of cells by intense pulsed electric fields

机译:强脉冲电场改变细胞介电特性

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The immediate charging response of a biological cell to pulsed electric field exposure depends strongly on the dielectric properties of its cellular components. Conversely, pulsed electric fields above a certain threshold of amplitude and duration will change these properties. Hence, an understanding of dielectric membrane phenomena is necessary to explain the underlying interaction mechanisms between a pulsed electric field and cells. Furthermore, different electrical characteristics of cells might also allow devising exposure conditions for pulsed electric field treatments that can preferentially target specific cells, such as cancer cells. We have investigated the dielectric properties of Jurkat cells (a malignant human T-cell line) before and after exposure to either: 8 consecutive 1.1-kV/cm electroporation pulses of 100 μs, or 8 consecutive 20-kV/cm pulses of 300 ns, with a repetition rate of about 1 Hz. Measurement results show that conductivities of the cell suspensions increased significantly following microsecond or nanosecond exposure. Further analysis, based on the combination of a Maxwell-Wagner mixture model and a double shell cell model, shows increases in the plasma membrane conductivity, indicating that membrane poration has occurred. Significant changes in cytoplasm conductivity and nucleoplasm conductivity after nanosecond pulsed electric field exposure were also observed, indicating that nanosecond pulses had affected intracellular structures The induced changes were significantly different for different regimens, suggesting different membrane-charging and pore-forming mechanisms.
机译:生物细胞对脉冲电场暴露的即时充电响应在很大程度上取决于其细胞成分的介电性能。相反,高于一定幅度和持续时间阈值的脉冲电场将改变这些特性。因此,需要了解介电膜现象以解释脉冲电场与细胞之间的潜在相互作用机制。此外,细胞的不同电特性也可能允许设计脉冲电场治疗的暴露条件,该条件可以优先靶向特定细胞,例如癌细胞。我们已经研究了Jurkat细胞(一种恶性人T细胞系)暴露于以下情况之前或之后的介电性能:连续8个连续的1.1 kV / cm电穿孔脉冲100μs,或连续8个连续的20 kV / cm脉冲300 ns ,重复频率约为1 Hz。测量结果表明,微秒或纳秒暴露后,细胞悬浮液的电导率显着提高。基于麦克斯韦-瓦格纳混合物模型和双壳细胞模型的进一步分析显示,质膜电导率增加,表明发生了膜渗透。纳秒脉冲电场暴露后,还观察到细胞质电导率和核质电导率的显着变化,表明纳秒脉冲已影响细胞内结构。不同方案的诱导变化显着不同,表明不同的膜电荷和成孔机制。

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