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通过狭窄的固态纳米孔的 DNA 折纸纳米板的变形介导转运。

Deformation-Mediated Translocation of DNA Origami Nanoplates through a Narrow Solid-State Nanopore.

机构信息

State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, No. 2, Sipailou, Nanjing 210096, China.

出版信息

Anal Chem. 2020 Oct 6;92(19):13238-13245. doi: 10.1021/acs.analchem.0c02396. Epub 2020 Sep 15.

Abstract

With the development in DNA self-assembly technology, DNA origami nanostructures have been widely applied in biomedical research. Solid-state nanopores represent an emerging single-molecule sensing platform for studying nanostructures with arbitrary dimensions and physical characteristics, including DNA origami. Here, we employed relatively narrow silicon nitride nanopores to detect the deformation and translocation of DNA origami nanoplates with dimensions of approximately 60 × 54 nm. We performed translocation experiments using three nanopore diameters that are all smaller than the plat dimensions. Analysis of current blockade signals and the representative events reveals three types of translocation orientations for the nanoplates. Furthermore, by studying the electrical signal characteristics (current change and dwell time) for the different diameter pores, we obtained information about the translocation behaviors for the DNA nanoplates through different constrictions. Our investigation provides an approach to analyze the deformation and translocation of DNA origami structures.

摘要

随着 DNA 自组装技术的发展,DNA 折纸纳米结构已被广泛应用于生物医学研究。固态纳米孔是一种新兴的单分子传感平台,可用于研究具有任意尺寸和物理特性的纳米结构,包括 DNA 折纸。在这里,我们采用相对较窄的氮化硅纳米孔来检测尺寸约为 60×54nm 的 DNA 折纸纳米板的变形和迁移。我们使用三个均小于平板尺寸的纳米孔直径进行了迁移实验。对电流阻断信号和代表性事件的分析揭示了纳米板的三种迁移取向。此外,通过研究不同直径的纳米孔的电信号特征(电流变化和停留时间),我们通过不同的限制获得了有关 DNA 纳米板迁移行为的信息。我们的研究为分析 DNA 折纸结构的变形和迁移提供了一种方法。

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