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Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection

Herein, a magnetic graphene field-effect transistor biosensor was prepared through the transfer of a chemical vapor deposition graphene film onto a glass substrate to produce a sensing film and conductive channel. By fixing 1-pyrenebutanoic acid succinimidyl ester onto graphene film as an anchor, a...

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Autores principales: Sun, Jinjin, Xie, Xiaohui, Xie, Ke, Xu, Shicai, Jiang, Shouzhen, Ren, Junfeng, Zhao, Yuefeng, Xu, Huaqiang, Wang, Jingjing, Yue, Weiwei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6656833/
https://www.ncbi.nlm.nih.gov/pubmed/31342195
http://dx.doi.org/10.1186/s11671-019-3048-1
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author Sun, Jinjin
Xie, Xiaohui
Xie, Ke
Xu, Shicai
Jiang, Shouzhen
Ren, Junfeng
Zhao, Yuefeng
Xu, Huaqiang
Wang, Jingjing
Yue, Weiwei
author_facet Sun, Jinjin
Xie, Xiaohui
Xie, Ke
Xu, Shicai
Jiang, Shouzhen
Ren, Junfeng
Zhao, Yuefeng
Xu, Huaqiang
Wang, Jingjing
Yue, Weiwei
author_sort Sun, Jinjin
collection PubMed
description Herein, a magnetic graphene field-effect transistor biosensor was prepared through the transfer of a chemical vapor deposition graphene film onto a glass substrate to produce a sensing film and conductive channel. By fixing 1-pyrenebutanoic acid succinimidyl ester onto graphene film as an anchor, a probe aptamer was immobilized on the graphene film in order to capture magnetically labeled complementary single-stranded DNA. Our experiments showed that, within a periodic magnetic field, the biosensor impedance exhibited a periodic oscillation, the amplitude of which was correlated to the complementary DNA concentration. Based on this principle, the magnetic graphene field-effect transistor was utilized to detect single-stranded DNA with detection limition of 1 pM. The results were rationalized using a model wherein the magnetic force causes the DNA strand to bend, thereby resulting in magnetic nanobeads/DNA modulation of the double conductive layer of graphene transistors. Furthermore, since a periodic magnetic field could be introduced to produce a periodic impedance changes of MGFETs, sampling integration could be used to improve the signal-to-noise ratio efficiently by increasing the number of periods of the external magnetic field. Therefore, a novel biosensor for DNA detection with high sensitivity has been presented in this work. Based on the detection principle, this system may also be a potential tool for detecting other bio-molecules, cells, etc.
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spelling pubmed-66568332019-08-07 Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection Sun, Jinjin Xie, Xiaohui Xie, Ke Xu, Shicai Jiang, Shouzhen Ren, Junfeng Zhao, Yuefeng Xu, Huaqiang Wang, Jingjing Yue, Weiwei Nanoscale Res Lett Nano Express Herein, a magnetic graphene field-effect transistor biosensor was prepared through the transfer of a chemical vapor deposition graphene film onto a glass substrate to produce a sensing film and conductive channel. By fixing 1-pyrenebutanoic acid succinimidyl ester onto graphene film as an anchor, a probe aptamer was immobilized on the graphene film in order to capture magnetically labeled complementary single-stranded DNA. Our experiments showed that, within a periodic magnetic field, the biosensor impedance exhibited a periodic oscillation, the amplitude of which was correlated to the complementary DNA concentration. Based on this principle, the magnetic graphene field-effect transistor was utilized to detect single-stranded DNA with detection limition of 1 pM. The results were rationalized using a model wherein the magnetic force causes the DNA strand to bend, thereby resulting in magnetic nanobeads/DNA modulation of the double conductive layer of graphene transistors. Furthermore, since a periodic magnetic field could be introduced to produce a periodic impedance changes of MGFETs, sampling integration could be used to improve the signal-to-noise ratio efficiently by increasing the number of periods of the external magnetic field. Therefore, a novel biosensor for DNA detection with high sensitivity has been presented in this work. Based on the detection principle, this system may also be a potential tool for detecting other bio-molecules, cells, etc. Springer US 2019-07-24 /pmc/articles/PMC6656833/ /pubmed/31342195 http://dx.doi.org/10.1186/s11671-019-3048-1 Text en © The Author(s). 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Nano Express
Sun, Jinjin
Xie, Xiaohui
Xie, Ke
Xu, Shicai
Jiang, Shouzhen
Ren, Junfeng
Zhao, Yuefeng
Xu, Huaqiang
Wang, Jingjing
Yue, Weiwei
Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title_full Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title_fullStr Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title_full_unstemmed Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title_short Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
title_sort magnetic graphene field-effect transistor biosensor for single-strand dna detection
topic Nano Express
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6656833/
https://www.ncbi.nlm.nih.gov/pubmed/31342195
http://dx.doi.org/10.1186/s11671-019-3048-1
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