Welcome Guest user | Login via Athens or your home institution
Resources
Register
For Authors
For Librarians
For Advertisers
eBooks
Services
Subscriptions/Pricing
Reprints
Advertising
Press Releases/News
Help
Downloads/Links
Online Submission
2012 Catalogue
Library Recommendation
Future Science Group
 

Summary
August 2007, Vol. 2, No. 4, Pages 459-481 , DOI 10.2217/17435889.2.4.459
(doi:10.2217/17435889.2.4.459)

Review

Nanopore-based single-molecule DNA analysis

Ken Healy​‌



Nanopore-based DNA analysis is a single-molecule technique with revolutionary potential. It promises to carry out a range of analyses, orders of magnitude faster than current methods, including length measurement, specific sequence detection, single-molecule dynamics and even de novo sequencing. The concept involves using an applied voltage to drive DNA molecules through a narrow pore that separates chambers of electrolyte solution. This voltage also drives a flow of electrolyte ions through the pore, measured as an electric current. When molecules pass through the pore, they block the flow of ions and, thus, their structure and length can be determined based on the degree and duration of the resulting current reductions. In this review, I explain the nanopore-based DNA analysis concept and briefly explore its historical foundations, before discussing and summarizing all experimental results reported to date. I conclude with a summary of the obstacles that must be overcome for it to realize its promised potential.

Full Text PDF (3733 KB) PDF Plus (3271 KB)

Cited by

, , . 2011. Coarse-Grained Modeling of DNA Nanopore Interactions. , 149-220.
CrossRef
, . (2011) Nanopore sensors for nucleic acid analysis. Nature Nanotechnology
Online publication date: 18-Sep-2011.
CrossRef
, . (2011) Force-Driven Polymer Translocation through a Nanopore: An Old Problem Revisited. The Journal of Physical Chemistry B110722093357060
Online publication date: 22-Jul-2011.
CrossRef
. (2011) Controlling molecular transport through nanopores. Journal of The Royal Society Interface
Online publication date: 29-Jun-2011.
CrossRef
, , , . (2011) Coarse-Grained Molecular Dynamics Simulation of DNA Translocation in Chemically Modified Nanopores. The Journal of Physical Chemistry B110428111017053
Online publication date: 28-Apr-2011.
CrossRef
, , . (2011) Ag nanotubes and Ag/AgCl electrodes in nanoporous membranes. Nanotechnology 22:15, 155301
Online publication date: 15-Apr-2011.
CrossRef
, , , , , , , . (2011) Noise Properties of Rectifying Nanopores. The Journal of Physical Chemistry C110412111423020
Online publication date: 12-Apr-2011.
CrossRef
, , , . (2011) Mutation detection in plasmid-based biopharmaceuticals. Biotechnology Journaln/a-n/a
Online publication date: 16-Feb-2011.
CrossRef
, , . (2011) Porous biomimetic membranes: fabrication, properties and future applications. Physical Chemistry Chemical Physics
Online publication date: 1-Jan-2011.
CrossRef
, , . (2011) Numerical and theoretical study on the mechanism of biopolymer translocation process through a nano-pore. The Journal of Chemical Physics 135:5, 055103
Online publication date: 1-Jan-2011.
CrossRef
, . (2011) Whole transcriptome analysis: what are we still missing?. Wiley Interdisciplinary Reviews: Systems Biology and Medicinen/a-n/a
Online publication date: 1-Jan-2011.
CrossRef
, , . (2010) DNA Strands Attached Inside Single Conical Nanopores: Ionic Pore Characteristics and Insight into DNA Biophysics. The Journal of Membrane Biology
Online publication date: 1-Dec-2010.
CrossRef
, , , . (2010) Distinguishable Populations Report on the Interactions of Single DNA Molecules with Solid-State Nanopores. Biophysical Journal 99:11, 3840-3848
Online publication date: 1-Dec-2010.
CrossRef
, , , . (2010) Vertically Aligned Graphene Layer Arrays from Chromonic Liquid Crystal Precursors. Advanced Materialsn/a-n/a
Online publication date: 22-Nov-2010.
CrossRef
, . (2010) Electrically sensing protease activity with nanopores. Journal of Physics: Condensed Matter 22:45, 454103
Online publication date: 17-Nov-2010.
CrossRef
, , , . (2010) Detection of urea-induced internal denaturation of dsDNA using solid-state nanopores. Journal of Physics: Condensed Matter 22:45, 454111
Online publication date: 17-Nov-2010.
CrossRef
, , , . (2010) Asymmetry in shape causing absolute negative mobility. Physical Review E 82:4,
Online publication date: 1-Oct-2010.
CrossRef
, , , , , . (2010) Applications of biological pores in nanomedicine, sensing, and nanoelectronics. Current Opinion in Biotechnology 21:4, 439-476
Online publication date: 1-Aug-2010.
CrossRef
, , , , , . (2010) Controlling nanopore size, shape and stability. Nanotechnology 21:11, 115304
Online publication date: 19-Mar-2010.
CrossRef
, , , . (2010) A long DNA segment in a linear nanoscale Paul trap. Nanotechnology 21:1, 015103
Online publication date: 8-Jan-2010.
CrossRef
, . (2010) Engineered voltage-responsive nanopores. Chemical Society Reviews 39:3, 1115
Online publication date: 1-Jan-2010.
CrossRef
, , , , . (2009) Versatile ultrathin nanoporous silicon nitride membranes. Proceedings of the National Academy of Sciences 106:50, 21039-21044
Online publication date: 15-Dec-2009.
CrossRef
, , . (2009) A nanofluidic channel with embedded transverse nanoelectrodes. Nanotechnology 20:10, 105302
Online publication date: 9-Mar-2009.
CrossRef
, , . (2009) Low-frequency noise in solid-state nanopores. Nanotechnology 20:9, 095501
Online publication date: 4-Mar-2009.
CrossRef
, , , , . (2009) Diffusion in Confined Geometries. ChemPhysChem 10:1, 45-54
Online publication date: 12-Jan-2009.
CrossRef
. (2009) Artificial Brownian motors: Controlling transport on the nanoscale. Reviews of Modern Physics 81:1, 387-442
Online publication date: 1-Jan-2009.
CrossRef
, . (2009) Nanopore analytics: sensing of single molecules. Chemical Society Reviews 38:8, 2360
Online publication date: 1-Jan-2009.
CrossRef
, , , . (2009) Molecular control of ionic conduction in polymer nanopores. Faraday Discussions 143, 47
Online publication date: 1-Jan-2009.
CrossRef
, , , , . (2008) Fabrication and functionalization of single asymmetric nanochannels for electrostatic/hydrophobic association of protein molecules. Nanotechnology 19:48, 485711
Online publication date: 3-Dec-2008.
CrossRef
, , , . (2008) Resistive-pulse detection of short dsDNAs using a chemically functionalized conical nanopore sensor. Nanomedicine 3:6, 787-796
Online publication date: 1-Dec-2008.
Summary | Full Text | PDF (736 KB) | PDF Plus (762 KB)  | Reprints & Permissions
, . (2008) Next-generation DNA sequencing. Nature Biotechnology 26:10, 1135-1145
Online publication date: 1-Oct-2008.
CrossRef
, , , . (2008) Pore structure and function of synthetic nanopores with fixed charges: tip shape and rectification properties. Nanotechnology 19:31, 315707
Online publication date: 6-Aug-2008.
CrossRef
, . (2008) A molecular dynamics simulation study on trapping ions in a nanoscale Paul trap. Nanotechnology 19:19, 195702
Online publication date: 14-May-2008.
CrossRef
, , , , . (2008) Modifying the surface charge of single track-etched conical nanopores in polyimide. Nanotechnology 19:8, 085713
Online publication date: 27-Feb-2008.
CrossRef
, , . (2007) Solid-state nanopore technologies for nanopore-based DNA analysis. Nanomedicine 2:6, 875-897
Online publication date: 1-Dec-2007.
Summary | Full Text | PDF (1514 KB) | PDF Plus (1342 KB)  | Reprints & Permissions
 

Prev. Article | Next Article
View/Print PDF (3733 KB)
View PDF Plus (3271 KB)
Add to favorites
Email to a friend
TOC Alert | Citation Alert What is RSS?

Quick Search
for
Author:
Ken Healy
Keywords:
α-hemolysin
DNA and RNA translocation
DNA sequencing
single-molecule analysis
synthetic and solid-state nanopores