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Conductivity Affects Nanosecond Electrical Pulse Induced Pressure Transient Formation

机译:电导率影响纳秒电脉冲感应压力瞬态形成

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Nanoporation occurs in cells exposed to high amplitude short duration (< 1μs) electrical pulses. The biophysical mechanism(s) responsible for nanoporation is unknown although several theories exist. Current theories focus exclusively on the electrical field, citing electrostriction, water dipole alignment and/or electrodeformation as the primary mechanisms for pore formation. Our group has shown that mechanical forces of substantial magnitude are also generated during nsEP exposures. We hypothesize that these mechanical forces may contribute to pore formation. In this paper, we report that alteration of the conductivity of the exposure solution also altered the level of mechanical forces generated during a nsEP exposure. By reducing the conductivity of the exposure solutions, we found that we could completely eliminate any pressure transients normally created by nsEP exposure. The data collected for this proceeding does not definitively show mat the pressure transients previously identified contribute to nanoporation; however; it indicates that conductivity influences both survival and pressure transient formation.
机译:纳米孔发生在暴露于高振幅短持续时间(<1μs)电脉冲的细胞中。虽然存在几种理论,但负责纳米流体的生物物理机制未知。电流理论专注于电场,引用电触发,水偶极对准和/或电光变化作为孔形成的主要机制。我们的小组表明,在NSEP曝光期间也产生了大量幅度的机械力。我们假设这些机械力可能有助于孔隙形成。在本文中,我们报告说,曝光溶液电导率的改变也改变了在NSEP暴露期间产生的机械力水平。通过降低曝光解决方案的电导率,我们发现我们可以完全消除通常由NSEP曝光创建的任何压力瞬变。收集的该诉讼的数据并不明确地显示垫子,前面识别的压力瞬变有助于纳米流体;然而;它表明电导率影响生存和压力瞬态形成。

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