Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications

In this study, the effect of oxygen on glucose oxidation using Glucose Oxidase (GOx) and oxygen resistant Pyranose-2-Oxidase (P2O) has been studied. Enzyme solutions with ferrocene carboxylic acid (FcCOOH) as electron mediator were tested with glassy carbon electrode (GCE) under air and nitrogen sat...

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Main Authors: S. Sahin, T. Wongnate, P. Chaiyen, E. Yu
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2014-10-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/5244
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spelling doaj-7f15b6ecb0654e339ff21bc1ebdb62332021-02-20T21:18:04ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162014-10-014110.3303/CET1441062Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell ApplicationsS. SahinT. WongnateP. ChaiyenE. YuIn this study, the effect of oxygen on glucose oxidation using Glucose Oxidase (GOx) and oxygen resistant Pyranose-2-Oxidase (P2O) has been studied. Enzyme solutions with ferrocene carboxylic acid (FcCOOH) as electron mediator were tested with glassy carbon electrode (GCE) under air and nitrogen saturated conditions in a three electrode electrochemical cell system. Electrochemical characterization of enzymes has been achieved in solution by using cyclic voltammetry (CV), linear sweep voltammetry (LSV) and chronoamperometry (CA). In the presence of glucose, CV and LSV results show increasing anodic peak current and decreasing cathodic peak current with increasing glucose concentrations, which reflects the ferrocene-mediated bioelectrocatalysis of glucose oxidation. The experiments with CA show enhanced stability with oxygen resistant P2O where GOx loses 30 % of its current density in the presence of oxygen after 3 hours. These results indicate that P2O, a promising enzyme with no oxygen reactivity and long stability, which can be used in enzymatic biofuel cell applications as an alternative to GOx.https://www.cetjournal.it/index.php/cet/article/view/5244
collection DOAJ
language English
format Article
sources DOAJ
author S. Sahin
T. Wongnate
P. Chaiyen
E. Yu
spellingShingle S. Sahin
T. Wongnate
P. Chaiyen
E. Yu
Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
Chemical Engineering Transactions
author_facet S. Sahin
T. Wongnate
P. Chaiyen
E. Yu
author_sort S. Sahin
title Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
title_short Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
title_full Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
title_fullStr Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
title_full_unstemmed Glucose Oxidation Using Oxygen Resistant Pyranose-2-Oxidase for Biofuel Cell Applications
title_sort glucose oxidation using oxygen resistant pyranose-2-oxidase for biofuel cell applications
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2014-10-01
description In this study, the effect of oxygen on glucose oxidation using Glucose Oxidase (GOx) and oxygen resistant Pyranose-2-Oxidase (P2O) has been studied. Enzyme solutions with ferrocene carboxylic acid (FcCOOH) as electron mediator were tested with glassy carbon electrode (GCE) under air and nitrogen saturated conditions in a three electrode electrochemical cell system. Electrochemical characterization of enzymes has been achieved in solution by using cyclic voltammetry (CV), linear sweep voltammetry (LSV) and chronoamperometry (CA). In the presence of glucose, CV and LSV results show increasing anodic peak current and decreasing cathodic peak current with increasing glucose concentrations, which reflects the ferrocene-mediated bioelectrocatalysis of glucose oxidation. The experiments with CA show enhanced stability with oxygen resistant P2O where GOx loses 30 % of its current density in the presence of oxygen after 3 hours. These results indicate that P2O, a promising enzyme with no oxygen reactivity and long stability, which can be used in enzymatic biofuel cell applications as an alternative to GOx.
url https://www.cetjournal.it/index.php/cet/article/view/5244
work_keys_str_mv AT ssahin glucoseoxidationusingoxygenresistantpyranose2oxidaseforbiofuelcellapplications
AT twongnate glucoseoxidationusingoxygenresistantpyranose2oxidaseforbiofuelcellapplications
AT pchaiyen glucoseoxidationusingoxygenresistantpyranose2oxidaseforbiofuelcellapplications
AT eyu glucoseoxidationusingoxygenresistantpyranose2oxidaseforbiofuelcellapplications
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