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.
Abstract:
Drugs targeting DNA and RNA in mammalian cells or viruses can also affect bacteria present in the host and thereby induce the bacterial SOS system. This has the potential to increase mutagenesis and the development of antimicrobial resistance (AMR). Here, we have examined nucleoside analogues (NAs) commonly used in anti-viral and anti-cancer therapies for potential effects on mutagenesis in Escherichia coli, using the rifampicin mutagenicity assay. To further explore the mode of action of the NAs, we applied E. coli deletion mutants, a peptide inhibiting Pol V (APIM-peptide) and metabolome and proteome analyses. Five out of the thirteen NAs examined, including three nucleoside reverse transcriptase inhibitors (NRTIs) and two anti-cancer drugs, increased the mutation frequency in E. coli by more than 25-fold at doses that were within reported plasma concentration range (Pl.CR), but that did not affect bacterial growth. We show that the SOS response is induced and that the increase in mutation frequency is mediated by the TLS polymerase Pol V. Quantitative mass spectrometry-based metabolite profiling did not reveal large changes in nucleoside phosphate or other central carbon metabolite pools, which suggests that the SOS induction is an effect of increased replicative stress. Our results suggest that NAs/NRTIs can contribute to the development of AMR and that drugs inhibiting Pol V can reverse this mutagenesis.
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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