Resistive-pulse DNA detection with a conical nanopore sensor

被引:194
|
作者
Harrell, C. Chad
Choi, Youngseon
Horne, Lloyd P.
Baker, Lane A.
Siwy, Zuzanna S.
Martin, Charles R. [1 ]
机构
[1] Univ Florida, Dept Chem, Gainesville, FL 32611 USA
[2] Univ Florida, Ctr Res Bio Nano Interface, Gainesville, FL 32611 USA
关键词
D O I
10.1021/la061234k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this paper, we describe resistive-pulse sensing of two large DNAs, a single-stranded phage DNA (7250 bases) and a double-stranded plasmid DNA (6600 base pairs), using a conically shaped nanopore in a track-etched polycarbonate membrane as the sensing element. The conically shaped nanopore had a small-diameter (tip) opening of 40 nm and a large-diameter (base) opening of 1.5 mu m. The DNAs were detected using the resistive-pulse, sometimes called stochastic sensing, method. This entails applying a transmembrane potential difference and monitoring the resulting ion current flowing through the nanopore. The phage DNA was driven electrophoretically through the nanopore (from tip to base), and these translocation events were observed as transient blocks in the ion current. We found that the frequency of these current-block events scales linearly with the concentration of the DNA and with the magnitude of the applied transmembrane potential. Increasing the applied transmembrane potential also led to a decrease in the duration of the current-block events. We also analyzed current-block events for the double-stranded plasmid DNA. However, because this DNA is too large to enter the tip opening of the nanopore, it could not translocate the pore. As a result, much shorter duration current-block events were observed, which we postulate are associated with bumping of the double-stranded DNA against the tip opening.
引用
收藏
页码:10837 / 10843
页数:7
相关论文
共 50 条
  • [1] Resistive-pulse detection of short dsDNAs using a chemically functionalized conical nanopore sensor
    Kececi, Kaan
    Sexton, Lindsay T.
    Buyukserin, Fatih
    Martin, Charles R.
    NANOMEDICINE, 2008, 3 (06) : 787 - 796
  • [2] Resistive-pulse Sensing of DNA with a Polymeric Nanopore Sensor and Characterization of DNA Translocation
    Kececi, Kaan
    Kaya, Dila
    Martin, Charles R.
    CHEMNANOMAT, 2022, 8 (02):
  • [3] Numerical Modelling of a Nanopore-based Resistive-Pulse Sensor for Detection of Biomolecules
    Berkenbrock, Jose-Alvim
    Scherer, Torsten
    Mail, Matthias
    Achenbach, Sven
    42ND ANNUAL INTERNATIONAL CONFERENCES OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY: ENABLING INNOVATIVE TECHNOLOGIES FOR GLOBAL HEALTHCARE EMBC'20, 2020, : 4278 - 4281
  • [4] Resistive-Pulse Sensing and Surface Charge Analysis of a Single Nanoparticle Collision at a Conical Glass Nanopore
    Zhou, Ya
    Wang, Dandan
    Li, Chuanping
    Hu, Ping
    Jin, Yongdong
    ANALYTICAL CHEMISTRY, 2019, 91 (12) : 7648 - 7653
  • [5] Resistive-pulse studies of proteins and protein/antibody complexes using a conical nanotube sensor
    Sexton, Lindsay T.
    Horne, Lloyd P.
    Sherrill, Stefanie A.
    Bishop, Gregory W.
    Baker, Lane A.
    Martin, Charles R.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2007, 129 (43) : 13144 - 13152
  • [6] Resistive-Pulse Nanopore Sensing of Ligand Exchange at the Single Nanocluster Limit for Peptide Detection
    Cox, Bobby D.
    Ghimire, Madhav L.
    Bertino, Massimo F.
    Reiner, Joseph E.
    ACS APPLIED NANO MATERIALS, 2020, 3 (08) : 7973 - 7981
  • [7] Resistive-Pulse Detection of Multilamellar Liposomes
    Holden, Deric A.
    Watkins, John J.
    White, Henry S.
    LANGMUIR, 2012, 28 (19) : 7572 - 7577
  • [8] Role of Nanopore Geometry in Particle Resolution by Resistive-Pulse Sensing
    Yilmaz, Durdane
    Kaya, Dila
    Kececi, Kaan
    Dinler, Ali
    CHEMISTRYSELECT, 2021, 6 (01): : 59 - 67
  • [9] A resistive-pulse sensor chip for multianalyte immunoassays
    Carbonaro, A
    Sohn, LL
    LAB ON A CHIP, 2005, 5 (10) : 1155 - 1160
  • [10] Nanopore-based sensing and analysis: beyond the resistive-pulse method
    Jiang, Yanan
    Guo, Wei
    SCIENCE BULLETIN, 2015, 60 (05) : 491 - 502