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Local Plasma Membrane Permeabilization of Living Cells by Nanosecond Electric Pulses Using Atomic Force Microscopy

机译:纳秒电脉冲使用原子力显微镜对活细胞的局部血浆膜通透性

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Numerous studies provide evidence that nanosecond electric pulses (nsEPs) can trigger the formation of nanopores in the plasma membranes of cells. However, the biophysical mechanism responsible for nanopore formation is not well understood. In this study, we hypothesize that membrane damage induced by nsEPs is primarily dependent on the local molecular composition and mechanical strength of the plasma membrane. To test this hypothesis, we positioned metal-coated, nanoscale cantilever tips using an atomic force microscope (AFM) to deliver nsEPs to localized areas on the surface of the plasma membrane. We conducted computational modeling simulations to verify that the electric field provided by the nsEP is concentrated between the tip and the plasma membrane. The results show that we could effectively deliver nsEPs using the AFM tips at very low voltages. Using scanning electron microscopy we analyzed the tips after applying 10V over 5 seconds duration and found no damage to the tip or loss of platinum coating. As a proof of concept, we applied a 1 and 10V, 5 second pulse to HeLa cells causing large morphological changes. We also applied both a mechanical indention and 600ns electrical pulse stimulus and measured positive propidium ion uptake into the cytoplasm suggesting formation of membrane pores. In future studies, we plan to elucidate the effect that specific, local molecular structures and compositions have on efficacy of electroporation using the newly constructed nano-electrode system.
机译:大量研究提供了纳秒电脉冲(nsEPs)可以触发细胞质膜中纳米孔形成的证据。但是,导致纳米孔形成的生物物理机制还没有被很好地理解。在这项研究中,我们假设nsEPs引起的膜损伤主要取决于质膜的局部分子组成和机械强度。为了验证这一假设,我们使用原子力显微镜(AFM)定位了金属涂层的纳米级悬臂尖端,以将nsEP传递至质膜表面的局部区域。我们进行了计算建模仿真,以验证nsEP提供的电场是否集中在尖端和质膜之间。结果表明,我们可以在非常低的电压下使用AFM探针有效地提供nsEP。使用扫描电子显微镜,我们在5秒内施加10V电压后分析了针尖,发现针尖没有损坏或铂涂层的损失。作为概念证明,我们向HeLa细胞施加了1V和10V,5秒的脉冲,从而引起了较大的形态变化。我们还应用了机械压痕和600ns电脉冲刺激,并测量了正丙positive离子对细胞质的摄取,表明形成了膜孔。在未来的研究中,我们计划阐明使用新构建的纳米电极系统,特定的局部分子结构和组成对电穿孔效力的影响。

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