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双桶纳米孔:控制单分子输运的新工具

Double Barrel Nanopores as a New Tool for Controlling Single-Molecule Transport.

机构信息

Department of Chemistry , Imperial College London , Exhibition Road , SW7 2AZ London , United Kingdom.

Department of Bionanoscience, Kavli Institute of Nanoscience Delft , Delft University of Technology , Van der Maasweg 9 , 2629 HZ Delft , The Netherlands.

出版信息

Nano Lett. 2018 Apr 11;18(4):2738-2745. doi: 10.1021/acs.nanolett.8b00860. Epub 2018 Mar 28.

Abstract

The ability to control the motion of single biomolecules is key to improving a wide range of biophysical and diagnostic applications. Solid-state nanopores are a promising tool capable of solving this task. However, molecular control and the possibility of slow readouts of long polymer molecules are still limited due to fast analyte transport and low signal-to-noise ratios. Here, we report on a novel approach of actively controlling analyte transport by using a double-nanopore architecture where two nanopores are separated by only a ∼ 20 nm gap. The nanopores can be addressed individually, allowing for two unique modes of operation: (i) pore-to-pore transfer, which can be controlled at near 100% efficiency, and (ii) DNA molecules bridging between the two nanopores, which enables detection with an enhanced temporal resolution (e.g., an increase of more than 2 orders of magnitude in the dwell time) without compromising the signal quality. The simplicity of fabrication and operation of the double-barrel architecture opens a wide range of applications for high-resolution readout of biological molecules.

摘要

控制单个生物分子运动的能力是改善广泛的生物物理和诊断应用的关键。固态纳米孔是一种有前途的工具,能够解决这个问题。然而,由于分析物的快速传输和低信噪比,分子控制和对长聚合物分子的缓慢读出的可能性仍然受到限制。在这里,我们报告了一种通过使用双纳米孔结构主动控制分析物传输的新方法,其中两个纳米孔仅间隔约 20nm。纳米孔可以单独寻址,允许两种独特的操作模式:(i)孔到孔的传输,其可以接近 100%的效率进行控制,以及(ii)在两个纳米孔之间桥接的 DNA 分子,其能够以增强的时间分辨率进行检测(例如,停留时间增加两个数量级以上),而不会影响信号质量。双桶结构的制造和操作的简单性为生物分子的高分辨率读出开辟了广泛的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e05/5969804/80ce77581864/nl-2018-00860m_0001.jpg

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