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Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay

Laccase is a copper-containing enzyme that does not require hydrogen peroxide as a co-substrate or additional cofactors for an enzymatic reaction. Nanomaterials of various chemical structures are usually applied to the construction of enzyme-based biosensors. Metals, metal oxides, semiconductors, an...

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Autores principales: Demkiv, Olha, Gayda, Galina, Stasyuk, Nataliya, Brahinetz, Olena, Gonchar, Mykhailo, Nisnevitch, Marina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9496325/
https://www.ncbi.nlm.nih.gov/pubmed/36140126
http://dx.doi.org/10.3390/bios12090741
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author Demkiv, Olha
Gayda, Galina
Stasyuk, Nataliya
Brahinetz, Olena
Gonchar, Mykhailo
Nisnevitch, Marina
author_facet Demkiv, Olha
Gayda, Galina
Stasyuk, Nataliya
Brahinetz, Olena
Gonchar, Mykhailo
Nisnevitch, Marina
author_sort Demkiv, Olha
collection PubMed
description Laccase is a copper-containing enzyme that does not require hydrogen peroxide as a co-substrate or additional cofactors for an enzymatic reaction. Nanomaterials of various chemical structures are usually applied to the construction of enzyme-based biosensors. Metals, metal oxides, semiconductors, and composite NPs perform various functions in electrochemical transformation schemes as a platform for the enzyme immobilization, a mediator of an electron transfer, and a signal amplifier. We describe here the development of amperometric biosensors (ABSs) based on laccase and redox-active micro/nanoparticles (hereafter—NPs), which were immobilized on a graphite electrode (GE). For this purpose, we isolated a highly purified enzyme from the fungus Trametes zonatus, and then synthesized bi- and trimetallic NPs of noble and transition metals, as well as hexacyanoferrates (HCF) of noble metals; these were layered onto the surfaces of GEs. The electroactivity of many of the NPs immobilized on the GEs was characterized by cyclic voltammetry (CV) experiments. The most effective mediators of electron transfer were selected as the platform for the development of laccase-based ABSs. As a result, a number of catechol-sensitive ABSs were constructed and characterized. The laccase/CuCo/GE was demonstrated to possess the highest sensitivity to catechol (4523 A·M(−1)·m(−2)) among the tested ABSs. The proposed ABSs may be promising for the analysis of phenolic derivatives in real samples of drinking water, wastewater, and food products.
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spelling pubmed-94963252022-09-23 Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay Demkiv, Olha Gayda, Galina Stasyuk, Nataliya Brahinetz, Olena Gonchar, Mykhailo Nisnevitch, Marina Biosensors (Basel) Article Laccase is a copper-containing enzyme that does not require hydrogen peroxide as a co-substrate or additional cofactors for an enzymatic reaction. Nanomaterials of various chemical structures are usually applied to the construction of enzyme-based biosensors. Metals, metal oxides, semiconductors, and composite NPs perform various functions in electrochemical transformation schemes as a platform for the enzyme immobilization, a mediator of an electron transfer, and a signal amplifier. We describe here the development of amperometric biosensors (ABSs) based on laccase and redox-active micro/nanoparticles (hereafter—NPs), which were immobilized on a graphite electrode (GE). For this purpose, we isolated a highly purified enzyme from the fungus Trametes zonatus, and then synthesized bi- and trimetallic NPs of noble and transition metals, as well as hexacyanoferrates (HCF) of noble metals; these were layered onto the surfaces of GEs. The electroactivity of many of the NPs immobilized on the GEs was characterized by cyclic voltammetry (CV) experiments. The most effective mediators of electron transfer were selected as the platform for the development of laccase-based ABSs. As a result, a number of catechol-sensitive ABSs were constructed and characterized. The laccase/CuCo/GE was demonstrated to possess the highest sensitivity to catechol (4523 A·M(−1)·m(−2)) among the tested ABSs. The proposed ABSs may be promising for the analysis of phenolic derivatives in real samples of drinking water, wastewater, and food products. MDPI 2022-09-08 /pmc/articles/PMC9496325/ /pubmed/36140126 http://dx.doi.org/10.3390/bios12090741 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
Demkiv, Olha
Gayda, Galina
Stasyuk, Nataliya
Brahinetz, Olena
Gonchar, Mykhailo
Nisnevitch, Marina
Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title_full Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title_fullStr Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title_full_unstemmed Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title_short Nanomaterials as Redox Mediators in Laccase-Based Amperometric Biosensors for Catechol Assay
title_sort nanomaterials as redox mediators in laccase-based amperometric biosensors for catechol assay
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9496325/
https://www.ncbi.nlm.nih.gov/pubmed/36140126
http://dx.doi.org/10.3390/bios12090741
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