Department of Science, Mathematics and Technology, Singapore University of Technology and Design, Singapore 487372.
Office of Innovation, Changi General Hospital, Singapore, 529889.
Nanoscale. 2022 Jun 1;14(21):7934-7942. doi: 10.1039/d1nr07362a.
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 ∼720 min was achieved, which is above the average of ∼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.
基于分子医学和基因工程的应用的重要性日益增加,这促使人们需要开发高性能电穿孔技术。电穿孔现象涉及到破坏细胞以增加细胞膜的通透性。尽管有大量的研究致力于探索新的电穿孔技术,但针对这些电穿孔方法的编程方案的设计仍然是一个挑战。纳秒刺激由于能够产生广泛的生物学反应,因此可能是这些技术的有前途的候选者。在这里,我们通过取向无序效应使用不同数量的电场脉冲来控制癌细胞的膜通透性。然后,我们报告了我们对使用增加数量的脉冲进行的几伏特纳秒交流(AC)刺激方法的探索,以开发电穿孔系统。实现了约 720 分钟的恢复时间,这高于使用中等细胞群体的现有电穿孔方法的平均恢复时间约 76 分钟,以及以前未报道的使用弱偏压幅度增加脉冲数时增加的电导。全原子分子动力学(MD)模拟揭示了取向无序促进了通透性的增加。这些发现强调了使用增加脉冲数的几伏特纳秒 AC 刺激策略开发下一代低功耗电穿孔系统的潜力。