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Published on: November 10, 2016
Small Molecule Antagonists of the DNA Repair ERCC1/XPA Protein-Protein Interaction
Robert Obermann1, Bereket Yemane1, Cassie Jarvis1
1Washington University School of Medicine, Department of Biochemistry and Molecular Biophysics, 660 S. Euclid Ave., Box 8231, St. Louis, MO, 63110, USA Tel.
Abstract:
The DNA excision repair protein ERCC1 and the DNA damage sensor protein, XPA are highly overexpressed in patient samples of cisplatin-resistant solid tumors including lung, bladder, ovarian, and testicular cancer. The repair of cisplatin-DNA crosslinks is dependent upon nucleotide excision repair (NER) that is modulated by protein-protein binding interactions of ERCC1, the endonuclease, XPF, and XPA. Thus, inhibition of their function is a potential therapeutic strategy for the selective sensitization of tumors to DNA-damaging platinum-based cancer therapy. Here, we report on new small-molecule antagonists of the ERCC1/XPA protein-protein interaction (PPI) discovered using a high-throughput competitive fluorescence polarization binding assay. We discovered a unique structural class of thiopyridine-3-carbonitrile PPI antagonists that block a truncated XPA polypeptide from binding to ERCC1. Preliminary hit-to-lead studies from compound 1 reveal structure-activity relationships (SAR) and identify lead compound 27 o with an EC50 of 4.7 μM. Furthermore, chemical shift perturbation mapping by NMR confirms that 1 binds within the same site as the truncated XPA67-80 peptide. These novel ERCC1 antagonists are useful chemical biology tools for investigating DNA damage repair pathways and provide a good starting point for medicinal chemistry optimization as therapeutics for sensitizing tumors to DNA damaging agents and overcoming resistance to platinum-based chemotherapy.
Insights
Researchers identified new small molecules that inhibit the ERCC1/XPA protein interaction, potentially overcoming cisplatin resistance in solid tumors by sensitizing them to chemotherapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- ERCC1 and XPA proteins are overexpressed in cisplatin-resistant solid tumors.
- Cisplatin-DNA crosslink repair relies on nucleotide excision repair (NER), involving ERCC1, XPF, and XPA.
- Inhibiting ERCC1/XPA interaction is a therapeutic strategy to sensitize tumors to platinum-based chemotherapy.
Purpose of the Study:
- To discover novel small-molecule antagonists targeting the ERCC1/XPA protein-protein interaction (PPI).
- To identify potential therapeutics for overcoming platinum-based chemotherapy resistance.
Main Methods:
- High-throughput competitive fluorescence polarization binding assay to screen for PPI antagonists.
- Hit-to-lead studies to establish structure-activity relationships (SAR).
- Nuclear Magnetic Resonance (NMR) spectroscopy (chemical shift perturbation mapping) to confirm binding site.
Main Results:
- A novel class of thiopyridine-3-carbonitrile PPI antagonists was discovered.
- Compound 27o demonstrated an EC50 of 4.7 μM, showing promising lead potential.
- NMR confirmed that the identified compounds bind to the ERCC1 interaction site for XPA.
Conclusions:
- Novel ERCC1 antagonists were identified, offering a new approach to combat cisplatin resistance.
- These compounds serve as valuable chemical biology tools for studying DNA repair.
- The findings provide a foundation for medicinal chemistry optimization towards novel cancer therapeutics.
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