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Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts

In the field of heterogeneous catalysis, the successful integration of enzymes and inorganic catalysts could pave the way to multifunctional materials which are able to perform advanced cascade reactions. However, such combination is not straightforward, for example in the case of zeolite catalysts...

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Autores principales: Smeets, Valentin, Baaziz, Walid, Ersen, Ovidiu, Gaigneaux, Eric M., Boissière, Cédric, Sanchez, Clément, Debecker, Damien P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146638/
https://www.ncbi.nlm.nih.gov/pubmed/34084349
http://dx.doi.org/10.1039/c9sc04615a
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author Smeets, Valentin
Baaziz, Walid
Ersen, Ovidiu
Gaigneaux, Eric M.
Boissière, Cédric
Sanchez, Clément
Debecker, Damien P.
author_facet Smeets, Valentin
Baaziz, Walid
Ersen, Ovidiu
Gaigneaux, Eric M.
Boissière, Cédric
Sanchez, Clément
Debecker, Damien P.
author_sort Smeets, Valentin
collection PubMed
description In the field of heterogeneous catalysis, the successful integration of enzymes and inorganic catalysts could pave the way to multifunctional materials which are able to perform advanced cascade reactions. However, such combination is not straightforward, for example in the case of zeolite catalysts for which enzyme immobilization is restricted to the external surface. Herein, this challenge is overcome by developing a new kind of hybrid catalyst based on hollow zeolite microspheres obtained by the aerosol-assisted assembly of zeolite nanocrystals. The latter spheres possess open entry-ways for enzymes, which are then loaded and cross-linked to form cross-linked enzyme aggregates (CLEAs), securing their entrapment. This controlled design allows the combination of all the decisive features of the zeolite with a high enzyme loading. A chemo-enzymatic reaction is demonstrated, where the structured zeolite material is used both as a nest for the enzyme and as an efficient inorganic catalyst. Glucose oxidase (GOx) ensures the in situ production of H(2)O(2) subsequently utilized by the TS-1 zeolite to catalyze the epoxidation of allylic alcohol toward glycidol. The strategy can also be used to entrap other enzymes or combination of enzymes, as demonstrated here with combi-CLEAs of horseradish peroxidase (HRP) and glucose oxidase. We anticipate that this strategy will open up new perspectives, leveraging on the spray-drying (aerosol) technique to shape microparticles from various nano-building blocks and on the entrapment of biological macromolecules to obtain new multifunctional hybrid microstructures.
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spelling pubmed-81466382021-06-02 Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts Smeets, Valentin Baaziz, Walid Ersen, Ovidiu Gaigneaux, Eric M. Boissière, Cédric Sanchez, Clément Debecker, Damien P. Chem Sci Chemistry In the field of heterogeneous catalysis, the successful integration of enzymes and inorganic catalysts could pave the way to multifunctional materials which are able to perform advanced cascade reactions. However, such combination is not straightforward, for example in the case of zeolite catalysts for which enzyme immobilization is restricted to the external surface. Herein, this challenge is overcome by developing a new kind of hybrid catalyst based on hollow zeolite microspheres obtained by the aerosol-assisted assembly of zeolite nanocrystals. The latter spheres possess open entry-ways for enzymes, which are then loaded and cross-linked to form cross-linked enzyme aggregates (CLEAs), securing their entrapment. This controlled design allows the combination of all the decisive features of the zeolite with a high enzyme loading. A chemo-enzymatic reaction is demonstrated, where the structured zeolite material is used both as a nest for the enzyme and as an efficient inorganic catalyst. Glucose oxidase (GOx) ensures the in situ production of H(2)O(2) subsequently utilized by the TS-1 zeolite to catalyze the epoxidation of allylic alcohol toward glycidol. The strategy can also be used to entrap other enzymes or combination of enzymes, as demonstrated here with combi-CLEAs of horseradish peroxidase (HRP) and glucose oxidase. We anticipate that this strategy will open up new perspectives, leveraging on the spray-drying (aerosol) technique to shape microparticles from various nano-building blocks and on the entrapment of biological macromolecules to obtain new multifunctional hybrid microstructures. The Royal Society of Chemistry 2019-12-09 /pmc/articles/PMC8146638/ /pubmed/34084349 http://dx.doi.org/10.1039/c9sc04615a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Smeets, Valentin
Baaziz, Walid
Ersen, Ovidiu
Gaigneaux, Eric M.
Boissière, Cédric
Sanchez, Clément
Debecker, Damien P.
Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title_full Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title_fullStr Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title_full_unstemmed Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title_short Hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
title_sort hollow zeolite microspheres as a nest for enzymes: a new route to hybrid heterogeneous catalysts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8146638/
https://www.ncbi.nlm.nih.gov/pubmed/34084349
http://dx.doi.org/10.1039/c9sc04615a
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