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Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes

Enzymatic biofuel cells (EBCs) represent a promising technology for biosensors, biodevices, and sustainable green energy applications, thanks to enzymes’ high specificity and catalytic efficiency. Nevertheless, drawbacks such as limited output power and short lifetime have to be solved. Nowadays, re...

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Autores principales: Montegiove, Nicolò, Calzoni, Eleonora, Pelosi, Dario, Gammaitoni, Luca, Barelli, Linda, Emiliani, Carla, Di Michele, Alessandro, Cesaretti, Alessio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785612/
https://www.ncbi.nlm.nih.gov/pubmed/36547530
http://dx.doi.org/10.3390/jfb13040270
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author Montegiove, Nicolò
Calzoni, Eleonora
Pelosi, Dario
Gammaitoni, Luca
Barelli, Linda
Emiliani, Carla
Di Michele, Alessandro
Cesaretti, Alessio
author_facet Montegiove, Nicolò
Calzoni, Eleonora
Pelosi, Dario
Gammaitoni, Luca
Barelli, Linda
Emiliani, Carla
Di Michele, Alessandro
Cesaretti, Alessio
author_sort Montegiove, Nicolò
collection PubMed
description Enzymatic biofuel cells (EBCs) represent a promising technology for biosensors, biodevices, and sustainable green energy applications, thanks to enzymes’ high specificity and catalytic efficiency. Nevertheless, drawbacks such as limited output power and short lifetime have to be solved. Nowadays, research is addressed to the use of 3D electrode structures, but the high cost and the industrialization difficulties of such electrodes represent a key issue. The purpose of the paper is thus to describe the use of a low-cost commercial conductive polymer (Sigracell(®) PV15) as support for the covalent immobilization of glucose oxidase and laccase, for bioanode and biocathode fabrication, respectively. Efficient immobilization protocols were determined for the immobilized enzymes in terms of employed linkers and enzyme concentrations, resulting in significant enzymatic activities for units of area. The analysis focuses specifically on the optimization of the challenging immobilization of laccase and assessing its stability over time. In particular, an optimum activity of 23 mU/cm(2) was found by immobilizing 0.18 mg/cm(2) of laccase, allowing better performances, as for voltage output and electrochemical stability, and a direct electron transfer mechanism to be revealed for the fabricated biocathode. This study thus poses the basis for the viable development of low-cost functional EBC devices for biomedical applications.
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spelling pubmed-97856122022-12-24 Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes Montegiove, Nicolò Calzoni, Eleonora Pelosi, Dario Gammaitoni, Luca Barelli, Linda Emiliani, Carla Di Michele, Alessandro Cesaretti, Alessio J Funct Biomater Article Enzymatic biofuel cells (EBCs) represent a promising technology for biosensors, biodevices, and sustainable green energy applications, thanks to enzymes’ high specificity and catalytic efficiency. Nevertheless, drawbacks such as limited output power and short lifetime have to be solved. Nowadays, research is addressed to the use of 3D electrode structures, but the high cost and the industrialization difficulties of such electrodes represent a key issue. The purpose of the paper is thus to describe the use of a low-cost commercial conductive polymer (Sigracell(®) PV15) as support for the covalent immobilization of glucose oxidase and laccase, for bioanode and biocathode fabrication, respectively. Efficient immobilization protocols were determined for the immobilized enzymes in terms of employed linkers and enzyme concentrations, resulting in significant enzymatic activities for units of area. The analysis focuses specifically on the optimization of the challenging immobilization of laccase and assessing its stability over time. In particular, an optimum activity of 23 mU/cm(2) was found by immobilizing 0.18 mg/cm(2) of laccase, allowing better performances, as for voltage output and electrochemical stability, and a direct electron transfer mechanism to be revealed for the fabricated biocathode. This study thus poses the basis for the viable development of low-cost functional EBC devices for biomedical applications. MDPI 2022-12-01 /pmc/articles/PMC9785612/ /pubmed/36547530 http://dx.doi.org/10.3390/jfb13040270 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
Montegiove, Nicolò
Calzoni, Eleonora
Pelosi, Dario
Gammaitoni, Luca
Barelli, Linda
Emiliani, Carla
Di Michele, Alessandro
Cesaretti, Alessio
Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title_full Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title_fullStr Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title_full_unstemmed Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title_short Optimizing Covalent Immobilization of Glucose Oxidase and Laccase on PV15 Fluoropolymer-Based Bioelectrodes
title_sort optimizing covalent immobilization of glucose oxidase and laccase on pv15 fluoropolymer-based bioelectrodes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785612/
https://www.ncbi.nlm.nih.gov/pubmed/36547530
http://dx.doi.org/10.3390/jfb13040270
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