| Literature DB >> 32247276 |
Francesca Rinaldi1, Jesús Fernández-Lucas2, Diego de la Fuente3, Changping Zheng4, Teodora Bavaro1, Benjamin Peters5, Gabriella Massolini1, Francesca Annunziata6, Paola Conti6, Isabel de la Mata3, Marco Terreni1, Enrica Calleri7.
Abstract
In this work, a mono- and a bi-enzymatic analytical immobilized enzyme reactors (IMERs) were developed as prototypes for biosynthetic purposes and their performances in the in-flow synthesis of nucleoside analogues of pharmaceutical interest were evaluated. Two biocatalytic routes based on nucleoside 2'-deoxyribosyltransferase from Lactobacillus reuteri (LrNDT) and uridine phosphorylase from Clostridium perfrigens (CpUP)/purine nucleoside phosphorylase from Aeromonas hydrophila (AhPNP) were investigated in the synthesis of 2'-deoxy, 2',3'-dideoxy and arabinonucleoside derivatives. LrNDT-IMER catalyzed the synthesis of 5-fluoro-2'-deoxyuridine and 5-iodo-2'-deoxyuridine in 65-59% conversion yield, while CpUP/AhPNP-IMER provided the best results for the preparation of arabinosyladenine (60% conversion yield). Both IMERs proved to be promising alternatives to chemical routes for the synthesis of nucleoside analogues. The developed in-flow system represents a powerful tool for the fast production on analytical scale of nucleosides for preliminary biological tests.Entities:
Keywords: Biocatalysis; Immobilized enzyme reactors; Nucleoside 2′-deoxyribosyltransferases; Nucleoside analogues; Nucleoside phosphorylases
Year: 2020 PMID: 32247276 DOI: 10.1016/j.biortech.2020.123258
Source DB: PubMed Journal: Bioresour Technol ISSN: 0960-8524 Impact factor: 9.642