Nucleoside Analogues Are Potent Inducers of Pol V-mediated Mutagenesis

Balagra Kasim Sumabe1,2,3, Synnøve Brandt Ræder1, Lisa Marie Røst4

  • 1Department of Clinical and Molecular Medicine, Faculty of Medicine and Health Sciences, NTNU, Norwegian University of Science and Technology, NO-7489 Trondheim, Norway.

Biomolecules
|July 2, 2021
PubMed

Insights

Certain antiviral and anti-cancer nucleoside analogues (NAs) significantly increase bacterial mutagenesis and antimicrobial resistance (AMR) by inducing the SOS response via Pol V. Inhibiting Pol V may reverse this effect.

Area of Science:

  • Microbiology
  • Genetics
  • Pharmacology

Background:

  • Drugs targeting host DNA/RNA can affect bacteria, potentially inducing the SOS system.
  • This induction may increase bacterial mutagenesis and the development of antimicrobial resistance (AMR).

Purpose of the Study:

  • To investigate the mutagenic potential of nucleoside analogues (NAs) used in antiviral and anti-cancer therapies on *Escherichia coli*.
  • To elucidate the mechanism of NA-induced mutagenesis, focusing on the SOS response and relevant polymerases.

Main Methods:

  • Utilized the rifampicin mutagenicity assay in *E. coli* to assess NA effects.
  • Employed *E. coli* deletion mutants, a Pol V inhibitor (APIM-peptide), and metabolome/proteome analyses to explore mechanisms.

Main Results:

  • Five of thirteen tested NAs, including nucleoside reverse transcriptase inhibitors (NRTIs) and anti-cancer drugs, elevated mutation frequency >25-fold at therapeutic concentrations without impacting growth.
  • NA treatment induced the bacterial SOS response, with mutagenesis mediated by the translesion synthesis (TLS) polymerase Pol V.
  • Metabolomic analysis indicated that SOS induction resulted from replicative stress rather than altered nucleoside phosphate pools.

Conclusions:

  • Nucleoside analogues (NAs) and NRTIs can contribute to AMR development by increasing bacterial mutagenesis.
  • Inhibitors of Pol V show potential for reversing NA-induced mutagenesis, offering a strategy to combat AMR.

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