Oxidoreductase Immobilization on Magnetic Nanoparticles

The aim of this work is to develop the synthesis of the magnetically separable biocatalyst for enzymatic oxidation of D-glucose to D-gluconic acid with high product yields. The biocatalyst support is based on magnetite particles (MPs) synthesized by coprecipitation and coated with the amino- silica...

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Main Authors: Aleksandrina Sulman, Valentina Matveeva, Ekaterina Golikova, Olga Grebennikova, Natalia Lakina, Valentin Doluda, Alexey Yu. Karpenkov, Esther Sulman
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2019-05-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/9847
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spelling doaj-5e52d35cd51047ecac616172d80072ef2021-02-16T21:06:21ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162019-05-017410.3303/CET1974082Oxidoreductase Immobilization on Magnetic NanoparticlesAleksandrina SulmanValentina MatveevaEkaterina GolikovaOlga GrebennikovaNatalia LakinaValentin DoludaAlexey Yu. KarpenkovEsther SulmanThe aim of this work is to develop the synthesis of the magnetically separable biocatalyst for enzymatic oxidation of D-glucose to D-gluconic acid with high product yields. The biocatalyst support is based on magnetite particles (MPs) synthesized by coprecipitation and coated with the amino- silica layer to facilitate further functionalization. This functionalization involves the attachment of the glutaric dialdehyde linker followed by the covalent attachment of glucose oxidase (GOx, an enzyme of oxidoreductase group) via its amino groups. TEM, XRD, and magnetic measurements were performed for initial MPs and GOx biocatalyst. The biocatalyst activity was studied in the oxidation reaction of D-glucose to D-gluconic acid. The biocatalyst synthesis proposed in this work allowed to create a highly effective system. It was found that GOx immobilized on the modified MPs was the most active biocatalytic system in comparison with other inorganic support and showing 88% of gluconic acid yield.https://www.cetjournal.it/index.php/cet/article/view/9847
collection DOAJ
language English
format Article
sources DOAJ
author Aleksandrina Sulman
Valentina Matveeva
Ekaterina Golikova
Olga Grebennikova
Natalia Lakina
Valentin Doluda
Alexey Yu. Karpenkov
Esther Sulman
spellingShingle Aleksandrina Sulman
Valentina Matveeva
Ekaterina Golikova
Olga Grebennikova
Natalia Lakina
Valentin Doluda
Alexey Yu. Karpenkov
Esther Sulman
Oxidoreductase Immobilization on Magnetic Nanoparticles
Chemical Engineering Transactions
author_facet Aleksandrina Sulman
Valentina Matveeva
Ekaterina Golikova
Olga Grebennikova
Natalia Lakina
Valentin Doluda
Alexey Yu. Karpenkov
Esther Sulman
author_sort Aleksandrina Sulman
title Oxidoreductase Immobilization on Magnetic Nanoparticles
title_short Oxidoreductase Immobilization on Magnetic Nanoparticles
title_full Oxidoreductase Immobilization on Magnetic Nanoparticles
title_fullStr Oxidoreductase Immobilization on Magnetic Nanoparticles
title_full_unstemmed Oxidoreductase Immobilization on Magnetic Nanoparticles
title_sort oxidoreductase immobilization on magnetic nanoparticles
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2019-05-01
description The aim of this work is to develop the synthesis of the magnetically separable biocatalyst for enzymatic oxidation of D-glucose to D-gluconic acid with high product yields. The biocatalyst support is based on magnetite particles (MPs) synthesized by coprecipitation and coated with the amino- silica layer to facilitate further functionalization. This functionalization involves the attachment of the glutaric dialdehyde linker followed by the covalent attachment of glucose oxidase (GOx, an enzyme of oxidoreductase group) via its amino groups. TEM, XRD, and magnetic measurements were performed for initial MPs and GOx biocatalyst. The biocatalyst activity was studied in the oxidation reaction of D-glucose to D-gluconic acid. The biocatalyst synthesis proposed in this work allowed to create a highly effective system. It was found that GOx immobilized on the modified MPs was the most active biocatalytic system in comparison with other inorganic support and showing 88% of gluconic acid yield.
url https://www.cetjournal.it/index.php/cet/article/view/9847
work_keys_str_mv AT aleksandrinasulman oxidoreductaseimmobilizationonmagneticnanoparticles
AT valentinamatveeva oxidoreductaseimmobilizationonmagneticnanoparticles
AT ekaterinagolikova oxidoreductaseimmobilizationonmagneticnanoparticles
AT olgagrebennikova oxidoreductaseimmobilizationonmagneticnanoparticles
AT natalialakina oxidoreductaseimmobilizationonmagneticnanoparticles
AT valentindoluda oxidoreductaseimmobilizationonmagneticnanoparticles
AT alexeyyukarpenkov oxidoreductaseimmobilizationonmagneticnanoparticles
AT esthersulman oxidoreductaseimmobilizationonmagneticnanoparticles
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