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

Chembiochem. 2022 Nov 18;23(22):e202200549. doi: 10.1002/cbic.202200549. Epub 2022 Oct 26.

Abstract

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.

Keywords: 3D-printing; amine dehydrogenases; biocatalysis; flow chemistry; reductive amination.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amination
  • Amines* / metabolism
  • Benzaldehydes*
  • Biocatalysis
  • Enzymes, Immobilized / metabolism
  • Hydrogels
  • Oxidoreductases / metabolism
  • Printing, Three-Dimensional
  • Sepharose

Substances

  • benzaldehyde
  • Benzaldehydes
  • Sepharose
  • Amines
  • Oxidoreductases
  • Enzymes, Immobilized
  • Hydrogels