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Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer

Wireless biosensor systems were developed in our lab for monitoring blood glucose concentrations in fish as an indicator of fish stress. However, uniform immobilization of the enzyme on the surface of the electrode is difficult, so the sensor response is typically reduced at a range of high glucose...

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Autores principales: Wu, Haiyun, Fujii, Yuzu, Nakano, Toshiki, Arimoto, Takafumi, Murata, Masataka, Matsumoto, Haruto, Yoshiura, Yasutoshi, Ohnuki, Hitoshi, Endo, Hideaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6479663/
https://www.ncbi.nlm.nih.gov/pubmed/30925800
http://dx.doi.org/10.3390/s19071518
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author Wu, Haiyun
Fujii, Yuzu
Nakano, Toshiki
Arimoto, Takafumi
Murata, Masataka
Matsumoto, Haruto
Yoshiura, Yasutoshi
Ohnuki, Hitoshi
Endo, Hideaki
author_facet Wu, Haiyun
Fujii, Yuzu
Nakano, Toshiki
Arimoto, Takafumi
Murata, Masataka
Matsumoto, Haruto
Yoshiura, Yasutoshi
Ohnuki, Hitoshi
Endo, Hideaki
author_sort Wu, Haiyun
collection PubMed
description Wireless biosensor systems were developed in our lab for monitoring blood glucose concentrations in fish as an indicator of fish stress. However, uniform immobilization of the enzyme on the surface of the electrode is difficult, so the sensor response is typically reduced at a range of high glucose concentrations during the stress monitoring. In this study, we attempted to enhance sensor response by using a self-assembled monolayer-immobilized enzyme. Glucose oxidase was immobilized on a working electrode modified with a self-assembled monolayer. The proposed biosensor showed a good correlation between the output current and the glucose concentration range of 10–3500 mg dL(−1) under an optimized working condition. The dynamic measurement range of this newly developed sensor is significantly improved, especially over a high concentration range, which helps the sensor to achieve better performance in dramatic changes in the stress response of fish. In addition, we used biological samples from test fish and obtained a good correlation coefficient between the sensor output current and the glucose concentration using a conventional method. The proposed wireless biosensor system was also applied to monitor fish stress responses in real time through different stressors and to obtain some precise data that reflect real fish stress responses.
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spelling pubmed-64796632019-04-29 Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer Wu, Haiyun Fujii, Yuzu Nakano, Toshiki Arimoto, Takafumi Murata, Masataka Matsumoto, Haruto Yoshiura, Yasutoshi Ohnuki, Hitoshi Endo, Hideaki Sensors (Basel) Article Wireless biosensor systems were developed in our lab for monitoring blood glucose concentrations in fish as an indicator of fish stress. However, uniform immobilization of the enzyme on the surface of the electrode is difficult, so the sensor response is typically reduced at a range of high glucose concentrations during the stress monitoring. In this study, we attempted to enhance sensor response by using a self-assembled monolayer-immobilized enzyme. Glucose oxidase was immobilized on a working electrode modified with a self-assembled monolayer. The proposed biosensor showed a good correlation between the output current and the glucose concentration range of 10–3500 mg dL(−1) under an optimized working condition. The dynamic measurement range of this newly developed sensor is significantly improved, especially over a high concentration range, which helps the sensor to achieve better performance in dramatic changes in the stress response of fish. In addition, we used biological samples from test fish and obtained a good correlation coefficient between the sensor output current and the glucose concentration using a conventional method. The proposed wireless biosensor system was also applied to monitor fish stress responses in real time through different stressors and to obtain some precise data that reflect real fish stress responses. MDPI 2019-03-28 /pmc/articles/PMC6479663/ /pubmed/30925800 http://dx.doi.org/10.3390/s19071518 Text en © 2019 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
Wu, Haiyun
Fujii, Yuzu
Nakano, Toshiki
Arimoto, Takafumi
Murata, Masataka
Matsumoto, Haruto
Yoshiura, Yasutoshi
Ohnuki, Hitoshi
Endo, Hideaki
Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title_full Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title_fullStr Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title_full_unstemmed Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title_short Development of a Novel Enhanced Biosensor System for Real-Time Monitoring of Fish Stress Using a Self-Assembled Monolayer
title_sort development of a novel enhanced biosensor system for real-time monitoring of fish stress using a self-assembled monolayer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6479663/
https://www.ncbi.nlm.nih.gov/pubmed/30925800
http://dx.doi.org/10.3390/s19071518
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