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DNA Strands Attached Inside Single Conical Nanopores: Ionic Pore Characteristics and Insight into DNA Biophysics

机译:附着在单个锥形纳米孔内的DNA链:离子孔特征和对DNA生物物理学的认识。

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摘要

Single nanopores attract a great deal of scientific interest as a basis for biosensors and as a system to study the interactions and behavior of molecules in a confined volume. Tuning the geometry and surface chemistry of nanopores helps create devices that control transport of ions and molecules in solution. Here, we present single conically shaped nanopores whose narrow opening of 8 or 12 nm is modified with single-stranded DNA molecules. We find that the DNA occludes the narrow opening of nanopores and that the blockade extent decreases with the ionic strength of the background electrolyte. The results are explained by the ionic strength dependence of the persistence length of DNA. At low KCl concentrations (10 mM) the molecules assume an extended and rigid conformation, thereby blocking the pore lumen and reducing the flow of ionic current to a greater extent than compacted DNA at high salt concentrations. Attaching flexible polymers to the pore walls hence creates a system with tunable opening diameters in order to regulate transport of both neutral and charged species.
机译:单个纳米孔作为生物传感器的基础以及研究有限体积内分子的相互作用和行为的系统引起了广泛的科学兴趣。调节纳米孔的几何形状和表面化学性质有助于创建控制溶液中离子和分子传输的装置。在这里,我们介绍了单个圆锥形的纳米孔,其狭窄的8或12 nm开口被单链DNA分子修饰。我们发现,DNA封闭了纳米孔的狭窄开口,并且封闭程度随背景电解质的离子强度而降低。结果由DNA持久长度的离子强度依赖性来解释。在低KCl浓度(10 mM)下,分子呈现出延伸且刚性的构象,从而比高盐浓度下的压实DNA更大程度地阻塞了孔腔并减少了离子流。因此,将柔性聚合物附着到孔壁上可创建具有可调开口直径的系统,以调节中性和带电物质的传输。

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