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Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application

DNA is strongly adsorbed on oxidized graphene surfaces in the presence of divalent cations. Here, we studied the effect of DNA adsorption on electrochemical charge transfer at few-layered, oxygen-functionalized graphene (GO(x)) electrodes. DNA adsorption on the inkjet-printed GO(x) electrodes caused...

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Autores principales: Asefifeyzabadi, Narges, Holland, Torrey E., Sivakumar, Poopalasingam, Talapatra, Saikat, Senanayake, Ishani M., Goodson, Boyd M., Shamsi, Mohtashim H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394360/
https://www.ncbi.nlm.nih.gov/pubmed/34436075
http://dx.doi.org/10.3390/bios11080273
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author Asefifeyzabadi, Narges
Holland, Torrey E.
Sivakumar, Poopalasingam
Talapatra, Saikat
Senanayake, Ishani M.
Goodson, Boyd M.
Shamsi, Mohtashim H.
author_facet Asefifeyzabadi, Narges
Holland, Torrey E.
Sivakumar, Poopalasingam
Talapatra, Saikat
Senanayake, Ishani M.
Goodson, Boyd M.
Shamsi, Mohtashim H.
author_sort Asefifeyzabadi, Narges
collection PubMed
description DNA is strongly adsorbed on oxidized graphene surfaces in the presence of divalent cations. Here, we studied the effect of DNA adsorption on electrochemical charge transfer at few-layered, oxygen-functionalized graphene (GO(x)) electrodes. DNA adsorption on the inkjet-printed GO(x) electrodes caused amplified current response from ferro/ferricyanide redox probe at concentration range 1 aM–10 nM in differential pulse voltammetry. We studied a number of variables that may affect the current response of the interface: sequence type, conformation, concentration, length, and ionic strength. Later, we showed a proof-of-concept DNA biosensing application, which is free from chemical immobilization of the probe and sensitive at attomolar concentration regime. We propose that GO(x) electrodes promise a low-cost solution to fabricate a highly sensitive platform for label-free and chemisorption-free DNA biosensing.
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spelling pubmed-83943602021-08-28 Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application Asefifeyzabadi, Narges Holland, Torrey E. Sivakumar, Poopalasingam Talapatra, Saikat Senanayake, Ishani M. Goodson, Boyd M. Shamsi, Mohtashim H. Biosensors (Basel) Article DNA is strongly adsorbed on oxidized graphene surfaces in the presence of divalent cations. Here, we studied the effect of DNA adsorption on electrochemical charge transfer at few-layered, oxygen-functionalized graphene (GO(x)) electrodes. DNA adsorption on the inkjet-printed GO(x) electrodes caused amplified current response from ferro/ferricyanide redox probe at concentration range 1 aM–10 nM in differential pulse voltammetry. We studied a number of variables that may affect the current response of the interface: sequence type, conformation, concentration, length, and ionic strength. Later, we showed a proof-of-concept DNA biosensing application, which is free from chemical immobilization of the probe and sensitive at attomolar concentration regime. We propose that GO(x) electrodes promise a low-cost solution to fabricate a highly sensitive platform for label-free and chemisorption-free DNA biosensing. MDPI 2021-08-14 /pmc/articles/PMC8394360/ /pubmed/34436075 http://dx.doi.org/10.3390/bios11080273 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Asefifeyzabadi, Narges
Holland, Torrey E.
Sivakumar, Poopalasingam
Talapatra, Saikat
Senanayake, Ishani M.
Goodson, Boyd M.
Shamsi, Mohtashim H.
Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title_full Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title_fullStr Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title_full_unstemmed Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title_short Sequence-Independent DNA Adsorption on Few-Layered Oxygen-Functionalized Graphene Electrodes: An Electrochemical Study for Biosensing Application
title_sort sequence-independent dna adsorption on few-layered oxygen-functionalized graphene electrodes: an electrochemical study for biosensing application
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8394360/
https://www.ncbi.nlm.nih.gov/pubmed/34436075
http://dx.doi.org/10.3390/bios11080273
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