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Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths

As biosensing devices shrink smaller and smaller, they approach a scale in which single molecule electronic sensing becomes possible. Here, we review the operation of single-enzyme transistors made using single-walled carbon nanotubes. These novel hybrid devices transduce the motions and catalytic a...

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Autores principales: Gül, O. Tolga, Pugliese, Kaitlin M., Choi, Yongki, Sims, Patrick C., Pan, Deng, Rajapakse, Arith J., Weiss, Gregory A., Collins, Philip G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5039648/
https://www.ncbi.nlm.nih.gov/pubmed/27348011
http://dx.doi.org/10.3390/bios6030029
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author Gül, O. Tolga
Pugliese, Kaitlin M.
Choi, Yongki
Sims, Patrick C.
Pan, Deng
Rajapakse, Arith J.
Weiss, Gregory A.
Collins, Philip G.
author_facet Gül, O. Tolga
Pugliese, Kaitlin M.
Choi, Yongki
Sims, Patrick C.
Pan, Deng
Rajapakse, Arith J.
Weiss, Gregory A.
Collins, Philip G.
author_sort Gül, O. Tolga
collection PubMed
description As biosensing devices shrink smaller and smaller, they approach a scale in which single molecule electronic sensing becomes possible. Here, we review the operation of single-enzyme transistors made using single-walled carbon nanotubes. These novel hybrid devices transduce the motions and catalytic activity of a single protein into an electronic signal for real-time monitoring of the protein’s activity. Analysis of these electronic signals reveals new insights into enzyme function and proves the electronic technique to be complementary to other single-molecule methods based on fluorescence. As one example of the nanocircuit technique, we have studied the Klenow Fragment (KF) of DNA polymerase I as it catalytically processes single-stranded DNA templates. The fidelity of DNA polymerases makes them a key component in many DNA sequencing techniques, and here we demonstrate that KF nanocircuits readily resolve DNA polymerization with single-base sensitivity. Consequently, template lengths can be directly counted from electronic recordings of KF’s base-by-base activity. After measuring as few as 20 copies, the template length can be determined with <1 base pair resolution, and different template lengths can be identified and enumerated in solutions containing template mixtures.
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spelling pubmed-50396482016-10-04 Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths Gül, O. Tolga Pugliese, Kaitlin M. Choi, Yongki Sims, Patrick C. Pan, Deng Rajapakse, Arith J. Weiss, Gregory A. Collins, Philip G. Biosensors (Basel) Article As biosensing devices shrink smaller and smaller, they approach a scale in which single molecule electronic sensing becomes possible. Here, we review the operation of single-enzyme transistors made using single-walled carbon nanotubes. These novel hybrid devices transduce the motions and catalytic activity of a single protein into an electronic signal for real-time monitoring of the protein’s activity. Analysis of these electronic signals reveals new insights into enzyme function and proves the electronic technique to be complementary to other single-molecule methods based on fluorescence. As one example of the nanocircuit technique, we have studied the Klenow Fragment (KF) of DNA polymerase I as it catalytically processes single-stranded DNA templates. The fidelity of DNA polymerases makes them a key component in many DNA sequencing techniques, and here we demonstrate that KF nanocircuits readily resolve DNA polymerization with single-base sensitivity. Consequently, template lengths can be directly counted from electronic recordings of KF’s base-by-base activity. After measuring as few as 20 copies, the template length can be determined with <1 base pair resolution, and different template lengths can be identified and enumerated in solutions containing template mixtures. MDPI 2016-06-24 /pmc/articles/PMC5039648/ /pubmed/27348011 http://dx.doi.org/10.3390/bios6030029 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gül, O. Tolga
Pugliese, Kaitlin M.
Choi, Yongki
Sims, Patrick C.
Pan, Deng
Rajapakse, Arith J.
Weiss, Gregory A.
Collins, Philip G.
Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title_full Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title_fullStr Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title_full_unstemmed Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title_short Single Molecule Bioelectronics and Their Application to Amplification-Free Measurement of DNA Lengths
title_sort single molecule bioelectronics and their application to amplification-free measurement of dna lengths
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5039648/
https://www.ncbi.nlm.nih.gov/pubmed/27348011
http://dx.doi.org/10.3390/bios6030029
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