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Published on: May 9, 2025
Identification of Small Molecule Translesion Synthesis Inhibitors That Target the Rev1-CT/RIR Protein-Protein
Vibhavari Sail1, Alessandro A Rizzo2, Nimrat Chatterjee3
1Department of Pharmaceutical Sciences, University of Connecticut , 69 North Eagleville Road, Unit 3092, Storrs, Connecticut 06269, United States.
Abstract:
Translesion synthesis (TLS) is an important mechanism through which proliferating cells tolerate DNA damage during replication. The mutagenic Rev1/Polζ-dependent branch of TLS helps cancer cells survive first-line genotoxic chemotherapy and introduces mutations that can contribute to the acquired resistance so often observed with standard anticancer regimens. As such, inhibition of Rev1/Polζ-dependent TLS has recently emerged as a strategy to enhance the efficacy of first-line chemotherapy and reduce the acquisition of chemoresistance by decreasing tumor mutation rate. The TLS DNA polymerase Rev1 serves as an integral scaffolding protein that mediates the assembly of the active multiprotein TLS complexes. Protein-protein interactions (PPIs) between the C-terminal domain of Rev1 (Rev1-CT) and the Rev1-interacting region (RIR) of other TLS DNA polymerases play an essential role in regulating TLS activity. To probe whether disrupting the Rev1-CT/RIR PPI is a valid approach for developing a new class of targeted anticancer agents, we designed a fluorescence polarization-based assay that was utilized in a pilot screen for small molecule inhibitors of this PPI. Two small molecule scaffolds that disrupt this interaction were identified, and secondary validation assays confirmed that compound 5 binds to Rev1-CT at the RIR interface. Finally, survival and mutagenesis assays in mouse embryonic fibroblasts and human fibrosarcoma HT1080 cells treated with cisplatin and ultraviolet light indicate that these compounds inhibit mutagenic Rev1/Polζ-dependent TLS in cells, validating the Rev1-CT/RIR PPI for future anticancer drug discovery and identifying the first small molecule inhibitors of TLS that target Rev1-CT.
Insights
Inhibiting Rev1/Polζ-dependent translesion synthesis (TLS) may enhance chemotherapy efficacy. Researchers identified small molecules that disrupt Rev1-CT/RIR protein interactions, inhibiting mutagenic TLS in cancer cells.
Area of Science:
- Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- Translesion synthesis (TLS) enables cancer cells to survive genotoxic chemotherapy by tolerating DNA damage.
- The mutagenic Rev1/Polζ-dependent TLS pathway contributes to acquired chemoresistance by increasing tumor mutation rates.
- Inhibiting Rev1/Polζ-dependent TLS is a promising strategy to improve chemotherapy effectiveness and reduce resistance.
Purpose of the Study:
- To investigate if disrupting the Rev1-CT/RIR protein-protein interaction (PPI) can be a strategy for developing targeted anticancer agents.
- To identify small molecules that inhibit the Rev1-CT/RIR PPI.
Main Methods:
- Development of a fluorescence polarization-based assay to screen for inhibitors of the Rev1-CT/RIR PPI.
- Pilot screen using the developed assay to identify small molecule scaffolds.
- Secondary validation assays to confirm compound binding and inhibition of TLS in cellular models.
Main Results:
- Two small molecule scaffolds that disrupt the Rev1-CT/RIR interaction were identified.
- Compound 5 was confirmed to bind to Rev1-CT at the RIR interface.
- Inhibition of mutagenic Rev1/Polζ-dependent TLS was observed in mouse embryonic fibroblasts and human HT1080 cells treated with cisplatin and UV light.
Conclusions:
- The Rev1-CT/RIR PPI is a valid target for developing novel anticancer agents.
- The identified small molecules are the first inhibitors of TLS targeting Rev1-CT.
- These findings validate the Rev1-CT/RIR PPI for future anticancer drug discovery efforts.
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