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A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate

In this study, the personal glucose meter (PGM) was first used as a fast and user-friendly meter for analyzing catechol (CA) based on the reduction of the mediator K(3)[Fe(CN)(6)] to K(4)[Fe(CN)(6)] in the glucose test strip. Then, an easy, low-cost, and convenient PGM-based method for detecting tyr...

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Detalles Bibliográficos
Autores principales: Tian, Tao, Zhang, Wei-Yi, Zhou, Hang-Yu, Peng, Li-Jing, Zhou, Xi, Zhang, Hao, Yang, Feng-Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9776396/
https://www.ncbi.nlm.nih.gov/pubmed/36551051
http://dx.doi.org/10.3390/bios12121084
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author Tian, Tao
Zhang, Wei-Yi
Zhou, Hang-Yu
Peng, Li-Jing
Zhou, Xi
Zhang, Hao
Yang, Feng-Qing
author_facet Tian, Tao
Zhang, Wei-Yi
Zhou, Hang-Yu
Peng, Li-Jing
Zhou, Xi
Zhang, Hao
Yang, Feng-Qing
author_sort Tian, Tao
collection PubMed
description In this study, the personal glucose meter (PGM) was first used as a fast and user-friendly meter for analyzing catechol (CA) based on the reduction of the mediator K(3)[Fe(CN)(6)] to K(4)[Fe(CN)(6)] in the glucose test strip. Then, an easy, low-cost, and convenient PGM-based method for detecting tyrosinase (TYR) activity and sodium benzoate (SBA) was developed on the basis of the TYR-catalyzed reaction. In this method, CA is oxidized to form o-benzoquinone by TYR, thereby reducing the residual amount of CA and the PGM readout. On the other hand, SBA can inhibit the oxidation of CA catalyzed by TYR and increase the residual amount of CA after the enzymatic reaction. Therefore, the activity of TYR is proportional to the difference in the PGM readout of CA, and the concentration of SBA is positively correlated with the residual amount of CA. After the relevant experimental conditions were systematically optimized, the proposed PGM-based method for the detection of TYR and SBA was successfully validated. The liner ranges are 1.0–103.3 U/mL and 6.25–1000 ppm, and the quantification limits are 1.0 U/mL and 6.25 ppm for TYR and SBA, respectively. Moreover, the spiked recovery tests in normal human serum and carbonate beverages (i.e., Cola, Sprite, and Fanta) were performed, and the recoveries (91.6–106.8%) further confirm the applicability of the PGM-based method in real sample analysis.
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spelling pubmed-97763962022-12-23 A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate Tian, Tao Zhang, Wei-Yi Zhou, Hang-Yu Peng, Li-Jing Zhou, Xi Zhang, Hao Yang, Feng-Qing Biosensors (Basel) Article In this study, the personal glucose meter (PGM) was first used as a fast and user-friendly meter for analyzing catechol (CA) based on the reduction of the mediator K(3)[Fe(CN)(6)] to K(4)[Fe(CN)(6)] in the glucose test strip. Then, an easy, low-cost, and convenient PGM-based method for detecting tyrosinase (TYR) activity and sodium benzoate (SBA) was developed on the basis of the TYR-catalyzed reaction. In this method, CA is oxidized to form o-benzoquinone by TYR, thereby reducing the residual amount of CA and the PGM readout. On the other hand, SBA can inhibit the oxidation of CA catalyzed by TYR and increase the residual amount of CA after the enzymatic reaction. Therefore, the activity of TYR is proportional to the difference in the PGM readout of CA, and the concentration of SBA is positively correlated with the residual amount of CA. After the relevant experimental conditions were systematically optimized, the proposed PGM-based method for the detection of TYR and SBA was successfully validated. The liner ranges are 1.0–103.3 U/mL and 6.25–1000 ppm, and the quantification limits are 1.0 U/mL and 6.25 ppm for TYR and SBA, respectively. Moreover, the spiked recovery tests in normal human serum and carbonate beverages (i.e., Cola, Sprite, and Fanta) were performed, and the recoveries (91.6–106.8%) further confirm the applicability of the PGM-based method in real sample analysis. MDPI 2022-11-27 /pmc/articles/PMC9776396/ /pubmed/36551051 http://dx.doi.org/10.3390/bios12121084 Text en © 2022 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
Tian, Tao
Zhang, Wei-Yi
Zhou, Hang-Yu
Peng, Li-Jing
Zhou, Xi
Zhang, Hao
Yang, Feng-Qing
A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title_full A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title_fullStr A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title_full_unstemmed A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title_short A Catechol-Meter Based on Conventional Personal Glucose Meter for Portable Detection of Tyrosinase and Sodium Benzoate
title_sort catechol-meter based on conventional personal glucose meter for portable detection of tyrosinase and sodium benzoate
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9776396/
https://www.ncbi.nlm.nih.gov/pubmed/36551051
http://dx.doi.org/10.3390/bios12121084
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