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ATM Loss Confers Greater Sensitivity to ATR Inhibition Than PARP Inhibition in Prostate Cancer
Shahrzad Rafiei1, Kenyon Fitzpatrick1, David Liu2
1Department of Radiation Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts.
Abstract:
Alterations in DNA damage response (DDR) genes are common in advanced prostate tumors and are associated with unique genomic and clinical features. ATM is a DDR kinase that has a central role in coordinating DNA repair and cell-cycle response following DNA damage, and ATM alterations are present in approximately 5% of advanced prostate tumors. Recently, inhibitors of PARP have demonstrated activity in advanced prostate tumors harboring DDR gene alterations, particularly in tumors with BRCA1/2 alterations. However, the role of alterations in DDR genes beyond BRCA1/2 in mediating PARP inhibitor sensitivity is poorly understood. To define the role of ATM loss in prostate tumor DDR function and sensitivity to DDR-directed agents, we created a series of ATM-deficient preclinical prostate cancer models and tested the impact of ATM loss on DNA repair function and therapeutic sensitivities. ATM loss altered DDR signaling, but did not directly impact homologous recombination function. Furthermore, ATM loss did not significantly impact sensitivity to PARP inhibition but robustly sensitized to inhibitors of the related DDR kinase ATR. These results have important implications for planned and ongoing prostate cancer clinical trials and suggest that patients with tumor ATM alterations may be more likely to benefit from ATR inhibitor than PARP inhibitor therapy. SIGNIFICANCE: ATM loss occurs in a subset of prostate tumors. This study shows that deleting ATM in prostate cancer models does not significantly increase sensitivity to PARP inhibition but does sensitize to ATR inhibition.See related commentary by Setton and Powell, p. 2085.
Insights
Alterations in the ATM gene in prostate cancer do not significantly increase sensitivity to PARP inhibitors but do sensitize tumors to ATR inhibitors, suggesting a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- DNA damage response (DDR) gene alterations are frequent in advanced prostate tumors.
- ATM is a key DDR kinase involved in DNA repair and cell-cycle regulation.
- ATM alterations occur in about 5% of advanced prostate tumors.
Purpose of the Study:
- To investigate the role of ATM loss in prostate cancer's DNA repair function.
- To determine the impact of ATM loss on sensitivity to DDR-targeted therapies.
Main Methods:
- Development of ATM-deficient preclinical prostate cancer models.
- Assessment of DNA repair function and therapeutic sensitivities in these models.
Main Results:
- ATM loss altered DDR signaling but did not directly affect homologous recombination.
- ATM-deficient prostate cancer models showed no significant increase in sensitivity to PARP inhibitors.
- ATM loss robustly sensitized prostate cancer models to ATR kinase inhibitors.
Conclusions:
- ATM loss in prostate tumors does not predict sensitivity to PARP inhibitors.
- ATM alterations may indicate a potential benefit from ATR inhibitor therapy in prostate cancer patients.
- These findings have implications for ongoing and future prostate cancer clinical trials involving DDR-targeted agents.
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