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The interphase interval within a bipolar nanosecond electric pulse modulates bipolar cancellation

机译:双极纳秒电脉冲内的相位间隔调制双极取消

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Nanosecond electric pulse (nsEP) exposure generates an array of physiological effects. The extent of these effects is impacted by whether the nsEP is a unipolar (UP) or bipolar (BP) exposure. A 600ns pulse can generate 71% more YO-PRO-1 uptake compared to a 600ns+600ns pulse exposure. This observation is termed bipolar cancellation (BPC) because despite the BP nsEP consisting of an additional 600ns pulse, it generates reduced membrane perturbation. BPC is achieved by varying pulse amplitudes, and symmetrical and asymmetric pulse widths. The effect appears to reverse by increasing the interphase interval between symmetric BP pulses, suggesting membrane recovery is a BPC factor. To date, the impact of the interphase interval between asymmetrical BP and other BPC-inducing symmetrical BP nsEPs has not been fully explored. Additionally, interpulse intervals beyond 50s have not been explored to understand the impact of time between the BP nsEP phases. Here, we surveyed different interphase intervals among symmetrical and asymmetrical BP nsEPs to monitor their impact on BPC of YO-PRO-1 uptake. We identified that a 10 microsecond (ms) interphase interval within a symmetrical 600ns+600ns, and 900ns+900ns pulse can resolve BPC. Furthermore, the interphase interval to resolve asymmetric BPC from a 300ns+900ns pulse versus 600ns pulse exposure is greater (10ms) compared to symmetrical BP nsEPs. From these findings, we extended on our conceptual model that BPC is balanced by localized charging and discharging events across the membrane. Bioelectromagnetics. 39:441-450, 2018. Published 2018. This article is a U.S. Government work and is in the public domain in the USA.
机译:纳秒电脉冲(NSEP)曝光产生一种生理效应阵列。这些效果的程度受到NSEPP是单极(上)或双极(BP)暴露的影响。与600ns + 600ns脉冲曝光相比,600ns脉冲可以产生71%的YO-Pro-1摄取。该观察结果被称为双极消除(BPC),因为尽管具有额外的600NS脉冲组成的BP NSEP,但它产生降低的膜扰动。通过改变脉冲幅度和对称和不对称脉冲宽度来实现BPC。通过增加对称BP脉冲之间的相互间隔来逆转效果,表明膜恢复是BPC因子。迄今为止,尚未完全探索非对称BP与其他BPC诱导对称BP NSEPS之间的间隔间隔的影响。此外,尚未探索超过50秒的脉冲间隔以了解BP NSEP阶段之间的时间的影响。在这里,我们在对称和不对称BP NSEPS中调查了不同的间隔,以监测它们对YO-Pro-1摄取的BPC的影响。我们识别在对称的600ns + 600ns内的10微秒(MS)相位间隔和900ns + 900ns脉冲可以解析BPC。此外,与Symetical BP NSEPS相比,从300ns + 900ns脉冲解析非对称BPC的间隔与600ns脉冲曝光更大(<10ms)。从这些调查结果来看,我们延长了我们的概念模型,即BPC通过膜上的本地化充电和排出事件平衡。生物电磁学。 39:441-450,2018。发布于2018年。本文是美国政府工作,并在美国的公共领域。

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