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Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor

Herein, we show how the merge of biocatalysis with flow chemistry aided by 3D‐printing technologies can facilitate organic synthesis. This concept was exemplified for the reductive amination of benzaldehyde catalysed by co‐immobilised amine dehydrogenase and formate dehydrogenase in a continuous flo...

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Autores principales: Croci, Federico, Vilím, Jan, Adamopoulou, Theodora, Tseliou, Vasilis, Schoenmakers, Peter J., Knaus, Tanja, Mutti, Francesco G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9828473/
https://www.ncbi.nlm.nih.gov/pubmed/36173971
http://dx.doi.org/10.1002/cbic.202200549
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author Croci, Federico
Vilím, Jan
Adamopoulou, Theodora
Tseliou, Vasilis
Schoenmakers, Peter J.
Knaus, Tanja
Mutti, Francesco G.
author_facet Croci, Federico
Vilím, Jan
Adamopoulou, Theodora
Tseliou, Vasilis
Schoenmakers, Peter J.
Knaus, Tanja
Mutti, Francesco G.
author_sort Croci, Federico
collection PubMed
description Herein, we show how the merge of biocatalysis with flow chemistry aided by 3D‐printing technologies can facilitate organic synthesis. This concept was exemplified for the reductive amination of benzaldehyde catalysed by co‐immobilised amine dehydrogenase and formate dehydrogenase in a continuous flow micro‐reactor. For this purpose, we investigated enzyme co‐immobilisation by covalent binding, or ion‐affinity binding, or entrapment. Entrapment in an agarose hydrogel turned out to be the most promising solution for this biocatalytic reaction. Therefore, we developed a scalable and customisable approach whereby an agarose hydrogel containing the co‐entrapped dehydrogenases was cast in a 3D‐printed mould. The reactor was applied to the reductive amination of benzaldehyde in continuous flow over 120 h and afforded 47 % analytical yield and a space‐time yield of 7.4 g L day(−1) using 0.03 mol% biocatalysts loading. This work also exemplifies how rapid prototyping of enzymatic reactions in flow can be achieved through 3D‐printing technology.
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spelling pubmed-98284732023-01-10 Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor Croci, Federico Vilím, Jan Adamopoulou, Theodora Tseliou, Vasilis Schoenmakers, Peter J. Knaus, Tanja Mutti, Francesco G. Chembiochem Research Articles Herein, we show how the merge of biocatalysis with flow chemistry aided by 3D‐printing technologies can facilitate organic synthesis. This concept was exemplified for the reductive amination of benzaldehyde catalysed by co‐immobilised amine dehydrogenase and formate dehydrogenase in a continuous flow micro‐reactor. For this purpose, we investigated enzyme co‐immobilisation by covalent binding, or ion‐affinity binding, or entrapment. Entrapment in an agarose hydrogel turned out to be the most promising solution for this biocatalytic reaction. Therefore, we developed a scalable and customisable approach whereby an agarose hydrogel containing the co‐entrapped dehydrogenases was cast in a 3D‐printed mould. The reactor was applied to the reductive amination of benzaldehyde in continuous flow over 120 h and afforded 47 % analytical yield and a space‐time yield of 7.4 g L day(−1) using 0.03 mol% biocatalysts loading. This work also exemplifies how rapid prototyping of enzymatic reactions in flow can be achieved through 3D‐printing technology. John Wiley and Sons Inc. 2022-10-26 2022-11-18 /pmc/articles/PMC9828473/ /pubmed/36173971 http://dx.doi.org/10.1002/cbic.202200549 Text en © 2022 The Authors. ChemBioChem published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Croci, Federico
Vilím, Jan
Adamopoulou, Theodora
Tseliou, Vasilis
Schoenmakers, Peter J.
Knaus, Tanja
Mutti, Francesco G.
Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title_full Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title_fullStr Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title_full_unstemmed Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title_short Continuous Flow Biocatalytic Reductive Amination by Co‐Entrapping Dehydrogenases with Agarose Gel in a 3D‐Printed Mould Reactor
title_sort continuous flow biocatalytic reductive amination by co‐entrapping dehydrogenases with agarose gel in a 3d‐printed mould reactor
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9828473/
https://www.ncbi.nlm.nih.gov/pubmed/36173971
http://dx.doi.org/10.1002/cbic.202200549
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