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.

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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