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Published on: May 27, 2021
YU238259 Is a Novel Inhibitor of Homology-Dependent DNA Repair That Exhibits Synthetic Lethality and
Gregory C Stachelek1, Elizabeth Peterson-Roth2, Yanfeng Liu2
1Department of Therapeutic Radiology, Yale School of Medicine, New Haven, Connecticut. Department of Genetics, Yale School of Medicine, New Haven, Connecticut.
Unlabelled:
Radiotherapy and DNA-damaging chemotherapy are frequently utilized in the treatment of solid tumors. Innate or acquired resistance to these therapies remains a major clinical challenge in oncology. The development of small molecules that sensitize cancers to established therapies represents an attractive approach to extending survival and quality of life in patients. Here, we demonstrate that YU238259, a member of a novel class of DNA double-strand break repair inhibitors, exhibits potent synthetic lethality in the setting of DNA damage response and DNA repair defects. YU238259 specifically inhibits homology-dependent DNA repair, but not non-homologous end-joining, in cell-based GFP reporter assays. Treatment with YU238259 is not only synergistic with ionizing radiation, etoposide, and PARP inhibition, but this synergism is heightened by BRCA2 deficiency. Further, growth of BRCA2-deficient human tumor xenografts in nude mice is significantly delayed by YU238259 treatment even in the absence of concomitant DNA-damaging therapy. The cytotoxicity of these small molecules in repair-deficient cells results from an accumulation of unresolved DNA double-strand breaks. These findings suggest that YU238259 or related small molecules may have clinical benefit to patients with advanced BRCA2-negative tumors, either as a monotherapy or as an adjuvant to radiotherapy and certain chemotherapies.
Implications:
We have identified a novel series of compounds that demonstrate synthetic lethality in DNA repair-deficient cell and animal models and have strong potential for clinical translation.
Insights
A novel DNA repair inhibitor, YU238259, shows synthetic lethality in cancer cells with DNA repair defects. This compound sensitizes tumors to radiation and chemotherapy, offering potential for BRCA2-deficient cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Cancer treatment resistance to radiotherapy and chemotherapy is a significant clinical obstacle.
- Developing small molecules to enhance cancer therapy effectiveness is a promising strategy.
Purpose of the Study:
- To investigate the potential of YU238259, a novel DNA double-strand break repair inhibitor, as a sensitizer for cancer therapies.
- To evaluate the synthetic lethality of YU238259 in DNA damage response and repair-deficient models.
Main Methods:
- Utilized cell-based GFP reporter assays to assess YU238259's inhibition of homology-dependent DNA repair versus non-homologous end-joining.
- Evaluated the synergistic effects of YU238259 with ionizing radiation, etoposide, and PARP inhibitors in cancer cells, including BRCA2-deficient models.
- Assessed the efficacy of YU238259 in delaying tumor growth in BRCA2-deficient human tumor xenografts in mice.
Main Results:
- YU238259 selectively inhibits homology-dependent DNA repair.
- YU238259 demonstrated synergistic effects with DNA-damaging agents and PARP inhibitors, particularly in BRCA2-deficient cells.
- YU238259 treatment significantly delayed tumor growth in BRCA2-deficient xenografts, even as a monotherapy.
Conclusions:
- YU238259 induces cytotoxicity in DNA repair-deficient cells through the accumulation of DNA double-strand breaks.
- This novel compound shows significant potential for clinical application in patients with advanced BRCA2-negative tumors, as a standalone treatment or in combination therapy.
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