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Reverse C-glycosidase reaction provides C-nucleotide building blocks of xenobiotic nucleic acids

Author

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  • Martin Pfeiffer

    (Graz University of Technology
    Austrian Centre of Industrial Biotechnology (acib))

  • Bernd Nidetzky

    (Graz University of Technology
    Austrian Centre of Industrial Biotechnology (acib))

Abstract

C-Analogues of the canonical N-nucleosides have considerable importance in medicinal chemistry and are promising building blocks of xenobiotic nucleic acids (XNA) in synthetic biology. Although well established for synthesis of N-nucleosides, biocatalytic methods are lacking in C-nucleoside synthetic chemistry. Here, we identify pseudouridine monophosphate C-glycosidase for selective 5-β-C-glycosylation of uracil and derivatives thereof from pentose 5-phosphate (d-ribose, 2-deoxy-d-ribose, d-arabinose, d-xylose) substrates. Substrate requirements of the enzymatic reaction are consistent with a Mannich-like addition between the pyrimidine nucleobase and the iminium intermediate of enzyme (Lys166) and open-chain pentose 5-phosphate. β-Elimination of the lysine and stereoselective ring closure give the product. We demonstrate phosphorylation-glycosylation cascade reactions for efficient, one-pot synthesis of C-nucleoside phosphates (yield: 33 – 94%) from unprotected sugar and nucleobase. We show incorporation of the enzymatically synthesized C-nucleotide triphosphates into nucleic acids by RNA polymerase. Collectively, these findings implement biocatalytic methodology for C-nucleotide synthesis which can facilitate XNA engineering for synthetic biology applications.

Suggested Citation

  • Martin Pfeiffer & Bernd Nidetzky, 2020. "Reverse C-glycosidase reaction provides C-nucleotide building blocks of xenobiotic nucleic acids," Nature Communications, Nature, vol. 11(1), pages 1-13, December.
  • Handle: RePEc:nat:natcom:v:11:y:2020:i:1:d:10.1038_s41467-020-20035-0
    DOI: 10.1038/s41467-020-20035-0
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    Cited by:

    1. Martin Pfeiffer & Andrej Ribar & Bernd Nidetzky, 2023. "A selective and atom-economic rearrangement of uridine by cascade biocatalysis for production of pseudouridine," Nature Communications, Nature, vol. 14(1), pages 1-13, December.

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