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Modified Blumlein pulse-forming networks for bioelectrical applications.

机译:用于生物电应用的改良Blumlein脉冲形成网络。

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摘要

Intense nanosecond pulsed electric fields (nsPEFs) have been shown to induce, on intracellular structures, interesting effects dependent on electrical exposure conditions (pulse length and amplitude, repetition frequency and number of pulses), which are known in the literature as "bioelectrical effects" (Schoenbach et al., IEEE Trans Plasma Sci 30:293-300, 2002). In particular, pulses with a shorter width than the plasma membrane charging time constant (about 100 ns for mammalian cells) can penetrate the cell and trigger effects such as permeabilization of intracellular membranes, release of Ca(2+) and apoptosis induction. Moreover, the observed effects have led to exploration of medical applications, like the treatment of melanoma tumors (Nuccitelli et al., Biochem Biophys Res Commun 343:351-360, 2006). Pulsed electric fields allowing such effects usually range from several tens to a few hundred nanoseconds in duration and from a few to several tens of megavolts per meter in amplitude (Schoenbach et al., IEEE Trans Diel Elec Insul 14:1088-1109, 2007); however, the biological effects of subnanosecond pulses have been also investigated (Schoenbach et al., IEEE Trans Plasma Sci 36:414-422, 2008). The use of such a large variety of pulse parameters suggests that highly flexible pulse-generating systems, able to deliver wide ranges of pulse durations and amplitudes, are strongly required in order to explore effects and applications related to different exposure conditions. The Blumlein pulse-forming network is an often-employed circuit topology for the generation of high-voltage electric pulses with fixed pulse duration. An innovative modification to the Blumlein circuit has been recently devised which allows generation of pulses with variable amplitude, duration and polarity. Two different modified Blumlein pulse-generating systems are presented in this article, the first based on a coaxial cable configuration, matching microscopic slides as a pulse-delivery system, and the other based on microstrip transmission lines and designed to match cuvettes for the exposure of cell suspensions.
机译:强大的纳秒脉冲电场(nsPEF)已显示出可在细胞内结构上诱导取决于电暴露条件(脉冲长度和幅度,重复频率和脉冲数)的有趣效应,在文献中称为“生物电效应” (Schoenbach等人,IEEE Trans Plasma Sci 30:293-300,2002)。特别是,宽度小于质膜充电时间常数(对于哺乳动物细胞约为100 ns)的脉冲可以穿透细胞并触发诸如细胞内膜通透化,Ca(2+)释放和细胞凋亡诱导的效应。此外,所观察到的效果导致探索医学应用,例如治疗黑素瘤肿瘤(Nuccitelli等人,Biochem Biophys Res Commun 343:351-360,2006)。允许这种效应的脉冲电场的持续时间通常为几十米至几百纳秒,振幅为每米几十至几十兆伏(Schoenbach等人,IEEE Trans Diel Elec Insul 14:1088-1109,2007)。 ;然而,还研究了亚纳秒脉冲的生物效应(Schoenbach等人,IEEE Trans Plasma Sci 36:414-422,2008)。如此众多的脉冲参数的使用表明,为了探索与不同曝光条件相关的效果和应用,强烈需要高度灵活的脉冲生成系统,该系统能够提供宽范围的脉冲持续时间和振幅。 Blumlein脉冲形成网络是一种经常使用的电路拓扑,用于生成具有固定脉冲持续时间的高压电脉冲。最近已经设计出对布鲁姆林(Blumlein)电路的创新修改,该修改允许生成具有可变幅度,持续时间和极性的脉冲。本文介绍了两种不同的改进的Blumlein脉冲发生系统,第一种基于同轴电缆配置,将显微载玻片作为脉冲传输系统进行匹配,另一种基于微带传输线并设计为与比色杯相匹配以暴露于皮肤。细胞悬浮液。

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