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利用固态和脂质涂层纳米孔的光镊控制的转位实验观察 DNA 的流体动力滑动。

Hydrodynamic slip on DNA observed by optical tweezers-controlled translocation experiments with solid-state and lipid-coated nanopores.

机构信息

Experimental Biophysics and Applied Nanoscience, Faculty of Physics, Bielefeld University , 33615 Bielefeld, Germany.

出版信息

Nano Lett. 2014 Jul 9;14(7):4176-82. doi: 10.1021/nl501909t. Epub 2014 Jun 25.

Abstract

We use optical tweezers to investigate the threading force on a single dsDNA molecule inside silicon-nitride nanopores between 6 and 70 nm in diameter, as well as lipid-coated solid-state nanopores. We observe a strong increase of the threading force for decreasing nanopore size that can be attributed to a significant reduction in the electroosmotic flow (EOF), which opposes the electrophoresis. Additionally, we show that the EOF can also be reduced by coating the nanopore wall with an electrically neutral lipid bilayer, resulting in an 85% increase in threading force. All experimental findings can be described by a quantitative theoretical model that incorporates a hydrodynamic slip effect on the DNA surface with a slip length of 0.5 nm.

摘要

我们使用光镊研究了直径在 6 到 70nm 之间的氮化硅纳米孔以及脂质覆盖的固态纳米孔中,单个 dsDNA 分子的穿膜力。我们观察到穿膜力随着纳米孔尺寸的减小而显著增加,这可以归因于电泳相反的电渗流(EOF)的显著减小。此外,我们还表明,通过用电中性脂质双层覆盖纳米孔壁,EOF 也可以减小,从而导致穿膜力增加 85%。所有实验结果都可以通过一个定量理论模型来描述,该模型在 DNA 表面上包含一个 0.5nm 的滑移长度的流体动力学滑移效应。

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