• DocumentCode
    1428737
  • Title

    Nanopore Sequencing: Electrical Measurements of the Code of Life

  • Author

    Timp, Winston ; Mirsaidov, Utkur M. ; Wang, Deqiang ; Comer, Jeff ; Aksimentiev, Aleksei ; Timp, Gregory

  • Author_Institution
    Dept. of Med., Johns Hopkins Univ., Baltimore, MD, USA
  • Volume
    9
  • Issue
    3
  • fYear
    2010
  • fDate
    5/1/2010 12:00:00 AM
  • Firstpage
    281
  • Lastpage
    294
  • Abstract
    Sequencing a single molecule of deoxyribonucleic acid (DNA) using a nanopore is a revolutionary concept because it combines the potential for long read lengths (>5 kbp) with high speed (1 bp/10 ns), while obviating the need for costly amplification procedures due to the exquisite single molecule sensitivity. The prospects for implementing this concept seem bright. The cost savings from the removal of required reagents, coupled with the speed of nanopore sequencing places the $1000 genome within grasp. However, challenges remain: high fidelity reads demand stringent control over both the molecular configuration in the pore and the translocation kinetics. The molecular configuration determines how the ions passing through the pore come into contact with the nucleotides, while the translocation kinetics affect the time interval in which the same nucleotides are held in the constriction as the data is acquired. Proteins like ??-hemolysin and its mutants offer exquisitely precise self-assembled nanopores and have demonstrated the facility for discriminating individual nucleotides, but it is currently difficult to design protein structure ab initio, which frustrates tailoring a pore for sequencing genomic DNA. Nanopores in solid-state membranes have been proposed as an alternative because of the flexibility in fabrication and ease of integration into a sequencing platform. Preliminary results have shown that with careful control of the dimensions of the pore and the shape of the electric field, control of DNA translocation through the pore is possible. Furthermore, discrimination between different base pairs of DNA may be feasible. Thus, a nanopore promises inexpensive, reliable, high-throughput sequencing, which could thrust genomic science into personal medicine.
  • Keywords
    DNA; bioelectric phenomena; genomics; molecular biophysics; nanobiotechnology; DNA translocation; genomic science; high-throughput sequencing; life code electrical measurement; nanopore sequencing; personal medicine; solid-state membranes; Deoxyribonucleic acid (DNA); nanopore; protein; sequencing; solid state;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2010.2044418
  • Filename
    5422648