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Mechanism of How Salt-Gradient-Induced Charges Affect the Translocation of DNA Molecules through a Nanopore

机译:盐梯度诱导的电荷如何影响DNA分子通过纳米孔易位的机制。

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摘要

Experiments using nanopores demonstrated that a salt gradient enhances the capture rate of DNA and reduces its translocation speed. These two effects can help to enable electrical DNA sequencing with nanopores. Here, we provide a quantitative theoretical evaluation that shows the positive net charges, which accumulate around the pore entrance due to the salt gradient, are responsible for the two observed effects: they reinforce the electric capture field, resulting in promoted molecule capture rate; and they induce cationic electroosmotic flow through the nanopore, thus significantly retarding the motion of the anionic DNA through the nanopore. Our multiphysical simulation results show that, during the polymer trapping stage, the former effect plays the major role, thus resulting in promoted DNA capture rate, while during the nanopore-penetrating stage the latter effect dominates and consequently reduces the DNA translocation speed significantly. Quantitative agreement with experimental results has been reached by further taking nanopore wall surface charges into account.
机译:使用纳米孔的实验表明,盐梯度可提高DNA的捕获率并降低其转运速度。这两种作用可以帮助实现具有纳米孔的DNA电动测序。在这里,我们提供了定量的理论评估,显示了由于盐梯度而在孔入口周围累积的正净电荷,是造成两种观察到的效应的原因:它们增强了电捕获场,从而提高了分子捕获率;它们会诱导阳离子电渗流通过纳米孔,从而显着阻碍阴离子DNA通过纳米孔的运动。我们的多物理场模拟结果表明,在聚合物捕获阶段,前者起主要作用,从而提高了DNA捕获率,而在纳米孔穿透阶段,后者起了主导作用,因此显着降低了DNA转运速度。通过进一步考虑纳米孔壁表面电荷,已达到与实验结果的定量一致性。

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