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Immobilized enzyme reactors based on nucleoside phosphorylases and 2′-deoxyribosyltransferase for the in-flow synthesis of pharmaceutically relevant nucleoside analogues

Articolo
Data di Pubblicazione:
2020
Citazione:
Immobilized enzyme reactors based on nucleoside phosphorylases and 2′-deoxyribosyltransferase for the in-flow synthesis of pharmaceutically relevant nucleoside analogues / F. Rinaldi, J. Fernandez-Lucas, D. de la Fuente, C. Zheng, T. Bavaro, B. Peters, G. Massolini, F. Annunziata, P. Conti, I. de la Mata, M. Terreni, E. Calleri. - In: BIORESOURCE TECHNOLOGY. - ISSN 0960-8524. - 307(2020 Jul), pp. 123258.1-123258.9.
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.
Tipologia IRIS:
01 - Articolo su periodico
Keywords:
Biocatalysis; Immobilized enzyme reactors; Nucleoside 2′-deoxyribosyltransferases; Nucleoside analogues; Nucleoside phosphorylases; Biocatalysis; Pentosyltransferases; Purine-Nucleoside Phosphorylase; Enzymes, Immobilized; Nucleosides
Elenco autori:
F. Rinaldi, J. Fernandez-Lucas, D. de la Fuente, C. Zheng, T. Bavaro, B. Peters, G. Massolini, F. Annunziata, P. Conti, I. de la Mata, M. Terreni, E. Calleri
Autori di Ateneo:
ANNUNZIATA FRANCESCA ( autore )
CONTI PAOLA ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/741448
Link al Full Text:
https://air.unimi.it/retrieve/handle/2434/741448/1492900/Rinaldi%20et%20al._Bioresour%20Technol.%202020%20post%20print.pdf
Progetto:
BIOFLOW: an innovative platform for the in-flow biocatalytic preparation of high value chemicals
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Settore CHIM/08 - Chimica Farmaceutica
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