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Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing

Hydrogels are of great interest in the field of biosensing for their good biocompatibility, plasticity, and capability of providing 3D scaffolds. Nevertheless, the application of hydrogels has not been linked with broad surface biosensing systems yet. To overcome the limitations, here for the first...

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Autores principales: Mao, Xiaoxia, Chen, Guifang, Wang, Zihan, Zhang, Yuanguang, Zhu, Xiaoli, Li, Genxi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5873223/
https://www.ncbi.nlm.nih.gov/pubmed/29629148
http://dx.doi.org/10.1039/c7sc03716c
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author Mao, Xiaoxia
Chen, Guifang
Wang, Zihan
Zhang, Yuanguang
Zhu, Xiaoli
Li, Genxi
author_facet Mao, Xiaoxia
Chen, Guifang
Wang, Zihan
Zhang, Yuanguang
Zhu, Xiaoli
Li, Genxi
author_sort Mao, Xiaoxia
collection PubMed
description Hydrogels are of great interest in the field of biosensing for their good biocompatibility, plasticity, and capability of providing 3D scaffolds. Nevertheless, the application of hydrogels has not been linked with broad surface biosensing systems yet. To overcome the limitations, here for the first time, surface-immobilized pure DNA hydrogels were synthesized using a surficial primer-induced strategy and adopted for biosensing applications. The DNA hydrogel 3D scaffold is successfully constructed on a transparent ITO electrode, which facilitates both colourimetric and electrochemical measurements. Results show that the hydrogel is able to wrap enzymes solidly and exhibits favourable stability under different conditions. Owing to the free diffusion of the micromolecular targets throughout the hydrogel, while isolating the enzymes from the macromolecular interferences outside the hydrogel, the direct colourimetric and electrochemical detection of hydrogen peroxide and bilirubin in serum is achieved. The detection limit of hydrogen peroxide in serum is 22 nM by colourimetric analysis and 13 nM by electrochemical measurement. The detection limit of bilirubin is 32 nM, a favourable limit that could be used in jaundice diagnosis. In addition, the enzyme@hydrogel can be easily regenerated and the catalytic activity is retained for a few cycles, thus allowing the recycling of the hydrogel-based biosensing system. The successful integration of DNA hydrogels with surface biosensing systems will greatly expand the applications of hydrogels for diagnostic and environmental monitoring purposes.
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spelling pubmed-58732232018-04-06 Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing Mao, Xiaoxia Chen, Guifang Wang, Zihan Zhang, Yuanguang Zhu, Xiaoli Li, Genxi Chem Sci Chemistry Hydrogels are of great interest in the field of biosensing for their good biocompatibility, plasticity, and capability of providing 3D scaffolds. Nevertheless, the application of hydrogels has not been linked with broad surface biosensing systems yet. To overcome the limitations, here for the first time, surface-immobilized pure DNA hydrogels were synthesized using a surficial primer-induced strategy and adopted for biosensing applications. The DNA hydrogel 3D scaffold is successfully constructed on a transparent ITO electrode, which facilitates both colourimetric and electrochemical measurements. Results show that the hydrogel is able to wrap enzymes solidly and exhibits favourable stability under different conditions. Owing to the free diffusion of the micromolecular targets throughout the hydrogel, while isolating the enzymes from the macromolecular interferences outside the hydrogel, the direct colourimetric and electrochemical detection of hydrogen peroxide and bilirubin in serum is achieved. The detection limit of hydrogen peroxide in serum is 22 nM by colourimetric analysis and 13 nM by electrochemical measurement. The detection limit of bilirubin is 32 nM, a favourable limit that could be used in jaundice diagnosis. In addition, the enzyme@hydrogel can be easily regenerated and the catalytic activity is retained for a few cycles, thus allowing the recycling of the hydrogel-based biosensing system. The successful integration of DNA hydrogels with surface biosensing systems will greatly expand the applications of hydrogels for diagnostic and environmental monitoring purposes. Royal Society of Chemistry 2017-11-22 /pmc/articles/PMC5873223/ /pubmed/29629148 http://dx.doi.org/10.1039/c7sc03716c Text en This journal is © The Royal Society of Chemistry 2018 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Mao, Xiaoxia
Chen, Guifang
Wang, Zihan
Zhang, Yuanguang
Zhu, Xiaoli
Li, Genxi
Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title_full Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title_fullStr Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title_full_unstemmed Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title_short Surface-immobilized and self-shaped DNA hydrogels and their application in biosensing
title_sort surface-immobilized and self-shaped dna hydrogels and their application in biosensing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5873223/
https://www.ncbi.nlm.nih.gov/pubmed/29629148
http://dx.doi.org/10.1039/c7sc03716c
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