Mechanical Trapping of DNA in a Double-Nanopore System

Journal Article (2016)
Author(s)

S. Pud (TU Delft - BN/Cees Dekker Lab)

Shu Han Chao (University of Illinois at Urbana Champaign)

Maxim Belkin (University of Illinois at Urbana Champaign)

D.V. Verschueren (TU Delft - BN/Cees Dekker Lab)

Teun Huijben (Student TU Delft)

Casper van van Engelenburg (Student TU Delft)

C Dekker (TU Delft - BN/Cees Dekker Lab)

Aleksei Aksimentiev (University of Illinois at Urbana Champaign)

BN/Cees Dekker Lab
DOI related publication
https://doi.org/10.1021/acs.nanolett.6b04642
More Info
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Publication Year
2016
Language
English
BN/Cees Dekker Lab
Issue number
12
Volume number
16
Pages (from-to)
8021-8028

Abstract

Nanopores have become ubiquitous components of systems for single-molecule manipulation and detection, in particular DNA sequencing where electric field driven translocation of DNA through a nanopore is used to read out the DNA molecule. Here, we present a double-pore system where two nanopores are drilled in parallel through the same solid-state membrane, which offers new opportunities for DNA manipulation. Our experiments and molecular dynamics simulations show that simultaneous electrophoretic capture of a DNA molecule by the two nanopores mechanically traps the molecule, increasing its residence time within the nanopores by orders of magnitude. Remarkably, by using two unequal-sized nanopores, the pore of DNA entry and exit can be discerned from the ionic current blockades, and the translocation direction can be precisely controlled by small differences in the effective force applied to DNA. The mechanical arrest of DNA translocation using a double-pore system can be straightforwardly integrated into any solid-state nanopore platform, including those using optical or transverse-current readouts.

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