Laser induced self-N-doped porous graphene as an electrochemical biosensor for femtomolar miRNA detection

We report a sensitive, yet low-cost biosensor based on laser induced graphene for femtomolar microRNA (miRNA) detection. Combined with the miRNA extraction and magnetic isolation process, the target miRNAs were purified for further detection using laser induced graphene sensor. The laser induced gra...

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Veröffentlicht in:Carbon (New York) 2020-08, Vol.163, p.385-394
Hauptverfasser: Wan, Zhengfen, Umer, Muhammad, Lobino, Mirko, Thiel, David, Nguyen, Nam-Trung, Trinchi, Adrian, Shiddiky, Muhammad J.A., Gao, Yongsheng, Li, Qin
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container_end_page 394
container_issue
container_start_page 385
container_title Carbon (New York)
container_volume 163
creator Wan, Zhengfen
Umer, Muhammad
Lobino, Mirko
Thiel, David
Nguyen, Nam-Trung
Trinchi, Adrian
Shiddiky, Muhammad J.A.
Gao, Yongsheng
Li, Qin
description We report a sensitive, yet low-cost biosensor based on laser induced graphene for femtomolar microRNA (miRNA) detection. Combined with the miRNA extraction and magnetic isolation process, the target miRNAs were purified for further detection using laser induced graphene sensor. The laser induced graphene was prepared by direct laser writing on commercial polyimide (PI) and patterned via a computer-aided design system as an electrode for electrochemical biosensing. We found that the laser reduction of PI resulted in nitrogen-doped porous graphene, not only improving its conductivity but also its sensitivity to nucleic acids. Preeclampsia specific miRNA hsa-miR-486-5p was magnetically purified and directly adsorbed on the surface of graphene electrode via graphene-miRNA affinity interaction. Surface attached miRNAs were then electrochemically quantified using [Fe(CN)6]3-/4- redox system. Our assay demonstrates detection of miRNA has-miR-486-5p up to concentrations as low as 10 fM with excellent reproducibility. Owing to its facile fabrication, low cost and high performance, the laser induced N-doped graphene biosensor presented here shows great potential for applications in detecting miRNA in biomedical applications. [Display omitted]
doi_str_mv 10.1016/j.carbon.2020.03.043
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Combined with the miRNA extraction and magnetic isolation process, the target miRNAs were purified for further detection using laser induced graphene sensor. The laser induced graphene was prepared by direct laser writing on commercial polyimide (PI) and patterned via a computer-aided design system as an electrode for electrochemical biosensing. We found that the laser reduction of PI resulted in nitrogen-doped porous graphene, not only improving its conductivity but also its sensitivity to nucleic acids. Preeclampsia specific miRNA hsa-miR-486-5p was magnetically purified and directly adsorbed on the surface of graphene electrode via graphene-miRNA affinity interaction. Surface attached miRNAs were then electrochemically quantified using [Fe(CN)6]3-/4- redox system. Our assay demonstrates detection of miRNA has-miR-486-5p up to concentrations as low as 10 fM with excellent reproducibility. Owing to its facile fabrication, low cost and high performance, the laser induced N-doped graphene biosensor presented here shows great potential for applications in detecting miRNA in biomedical applications. 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Owing to its facile fabrication, low cost and high performance, the laser induced N-doped graphene biosensor presented here shows great potential for applications in detecting miRNA in biomedical applications. 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source ScienceDirect Journals (5 years ago - present)
subjects Biomedical materials
Biosensors
CAD
Computer aided design
Conductivity
Direct laser writing
Electrodes
Graphene
Lasers
Low cost
MicroRNAs
Nitrogen
Nucleic acids
Ribonucleic acid
RNA
title Laser induced self-N-doped porous graphene as an electrochemical biosensor for femtomolar miRNA detection
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