October 2008

Journal

The Potential and Challenges of Nanopore Sequencing

By:
Branton, Daniel; Deamer, D.; Marziali, A.; Bayley, H.; Benner, S.; Butler, Thomas; Di Ventra, Massimiliano; Garaj, S.; Hibbs, Andrew; Huang, Xiaohua; Jovanovich, Stevan; Krstic, Predrag S; Lindsay, Stuart; Ling, Xinsheng; Mastrangelo, Carlos; Meller, Amit; Oliver, John; Pershin, Yuriy; Ramsey, John; Riehn, Robert; Soni, Gautam; Tabard-Cossa, Vincent; Wanuunu, Meni; Wiggin, Matthew; Schloss, Jeffrey A
Journal Name:
Nature Biotechnology
Page Number:
1146-1153
Volume:
26
Issue Number:
10
Publication Date:
October 10, 2008
View DOI Listing:
https://doi.org/10.1038/nbt.1495

Abstract

A nanopore-based device provides single-molecule detection and analytical capabilities that are achieved by electrophoretically driving molecules in solution through a nan-scale pore. The nanopore provides a highly confined space within which single nucleic acid polymers can be analyzed at high throughput by one of a variety of means, and the perfect processivity that can be enforced in a narrow pore ensures that the native order of the nucleobases in a polynucleotide is reflected in the sequence of signals that is detected. Kilobase length polymers (single-stranded genomic DNA or RNA) or small molecules (e.g., nucleosides) can be identified and characterized without amplification or labeling, a unique analytical capability that makes inexpensive, rapid DNA sequencing a possibility. Further research and development to overcome current challenges to nanopore identification of each successive nucleotide in a DNA strand offers the prospect of 'third generation' instruments that will sequence a diploid mammalian genome for ~$1,000 in ~24 h.