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Bilayer-Spanning DNA Nanopores with Voltage-Switching between Open and Closed State

机译:在打开和关闭状态之间进行电压转换的跨双层DNA纳米孔

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摘要

Membrane-spanning nanopores from folded DNA are a recent example of biomimetic man-made nanostructures that can open up applications in biosensing, drug delivery, and nanofluidics. In this report, we generate a DNA nanopore based on the archetypal six-helix-bundle architecture and systematically characterize it via single-channel current recordings to address several fundamental scientific questions in this emerging field. We establish that the DNA pores exhibit two voltage-dependent conductance states. Low transmembrane voltages favor a stable high-conductance level, which corresponds to an unobstructed DNA pore. The expected inner width of the open channel is confirmed by measuring the conductance change as a function of poly(ethylene glycol) (PEG) size, whereby smaller PEGs are assumed to enter the pore. PEG sizing also clarifies that the main ion-conducting path runs through the membrane-spanning channel lumen as opposed to any proposed gap between the outer pore wall and the lipid bilayer. At higher voltages, the channel shows a main low-conductance state probably caused by electric-field-induced changes of the DNA pore in its conformation or orientation. This voltage-dependent switching between the open and closed states is observed with planar lipid bilayers as well as bilayers mounted on glass nanopipettes. These findings settle a discrepancy between two previously published conductances. By systematically exploring a large space of parameters and answering key questions, our report supports the development of DNA nanopores for nanobiotechnology.
机译:来自折叠DNA的跨膜纳米孔是仿生人造纳米结构的最新实例,可以在生物传感,药物递送和纳米流体学中打开应用。在本报告中,我们基于原型六螺旋束结构生成了DNA纳米孔,并通过单通道电流记录系统地表征了该纳米孔,以解决这一新兴领域中的一些基本科学问题。我们建立了DNA孔表现出两个电压依赖性电导状态。低跨膜电压有利于稳定的高电导水平,这对应于畅通的DNA孔。通过测量电导率变化与聚乙二醇(PEG)尺寸的关系,可以确定开放通道的预期内部宽度,从而假定较小的PEG进入孔中。 PEG大小确定也表明,与外部孔壁和脂质双层之间的任何建议间隙相反,主要的离子传导路径贯穿跨膜通道腔。在较高的电压下,通道显示主要的低电导状态,这可能是由电场诱导的DNA孔构象或方向变化引起的。使用平面脂质双层以及安装在玻璃纳米移液器上的双层可以观察到这种在打开状态和关闭状态之间的电压相关切换。这些发现解决了两个以前发布的电导之间的差异。通过系统地探索大量参数并回答关键问题,我们的报告支持了用于纳米生物技术的DNA纳米孔的开发。

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