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Ultralong recovery time in nanosecond electroporation systems enabled by orientational-disordering processes

机译:超长的纳秒的恢复时间电穿孔系统通过orientational-disordering流程

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The growing importance of applications based on molecular medicine and genetic engineering is driving the need to develop high-performance electroporation technologies. The electroporation phenomenon involves disruption of the cell for increasing membrane permeability. Although there is a multitude of research focused on exploring new electroporation techniques, the engineering of programming schemes suitable for these electroporation methods remains a challenge. Nanosecond stimulations could be promising candidates for these techniques owing to their ability to generate a wide range of biological responses. Here we control the membrane permeabilization of cancer cells using different numbers of electric-field pulses through orientational disordering effects. We then report our exploration of a few-volt nanosecond alternating-current (AC) stimulation method with an increased number of pulses for developing electroporation systems. A recovery time of similar to 720 min was achieved, which is above the average of similar to 76 min for existing electroporation methods using medium cell populations, as well as a previously unreported increased conductance with an increase in the number of pulses using weak bias amplitudes. All-atom molecular dynamics (MD) simulations reveal the orientation-disordering-facilitated increase in the degree of permeabilization. These findings highlight the potential of few-volt nanosecond AC-stimulation with an increased number of pulse strategies for the development of next-generation low-power electroporation systems.
机译:应用基于日益增长的重要性分子医学和基因工程开车需要开发高性能电穿孔技术。包括细胞的破坏现象膜透性增加。大量的研究集中在探索新电穿孔技术,工程编程适合这些计划电穿孔的方法仍然是一个挑战。纳秒刺激可能是有前途的这些技术由于其候选人生成一个广泛的生物的能力响应。使用不同的透化作用的癌症细胞电场脉冲的数量定向排列无序化的影响。我们的探索few-volt纳秒交流电(AC)刺激方法脉冲数的增加对发展中电穿孔系统。实现类似于720分钟,以上类似于第76分钟为现有的平均值使用介质细胞电穿孔的方法人口,以及先前报道增加电导的增加使用弱脉冲偏压振幅。所有原子分子动力学(MD)模拟揭示了orientation-disordering-facilitated增加透化作用的程度。发现强调few-volt的潜力纳秒AC-stimulation增加脉冲的发展策略新一代低功耗电穿孔系统。

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