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Modulation of biological responses to 2 ns electrical stimuli by field reversal

机译:通过现场逆转调节2 ns电刺激的生物反应

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摘要

Nanosecond bipolar pulse cancellation, a recently discovered Phenomenon, is modulation of the effects of a unipolar electric pulse exposure by a second pulse of opposite polarity. This attenuation of biological response by reversal of the electric field direction has been reported with pulse durations from 60 ns to 900 ns for a wide range of endpoints, and it is not observed with conventional electroporation pulses of much longer duration (> 100 mu s) where pulses are additive regardless of polarity. The most plausible proposed mechanisms involve the field-driven migration of ions to and from the membrane interface (accelerated membrane discharge). Here we report 2 ns bipolar pulse cancellation, extending the scale of previously published results down to the time required to construct the permeabilizing lipid electropores observed in molecular simulations. We add new cancellation endpoints, and we describe new bipolar pulse effects that are distinct from cancellation. This new data, which includes transport of cationic and anionic permeability indicators, fluorescence of membrane labels, and patterns of entry into permeabilized cells, is not readily explained by the accelerated discharge mechanism. We suggest that multi-step processes that involve first charged species movement and then responses of cellular homeostasis and repair mechanisms are more likely to explain the broad range of reported results.
机译:纳秒双极脉冲消除,最近发现的现象,是通过第二脉冲的单极电脉冲曝光的效果的调制。通过从60ns到900ns的脉冲持续的脉冲持续时间来报告通过脉冲持续的较宽终点的这种生物响应的这种衰减,并且在持续时间(>100μm)的传统电穿孔脉冲没有观察到它无论极性如何,脉冲都是添加的。最合理的提出机制涉及离子往返膜界面(加速膜排出)的现场驱动迁移。在这里,我们报告2 ns双极脉冲消除,将先前公布的结果的刻度延伸到构建在分子模拟中观察到的透化性脂质电孔所需的时间。我们添加了新的取消端点,我们描述了与取消不同的新双极脉冲效果。这种新数据包括伴有阳离子和阴离子渗透性指示剂,膜标记的荧光和进入透透析细胞的模式,不容易被加速的放电机制解释。我们建议涉及第一份带电物种运动的多步骤,然后对细胞稳态和修复机制的反应更有可能解释据报道的广泛结果。

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