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PARP1 Trapping and DNA Replication Stress Enhance Radiosensitization with Combined WEE1 and PARP Inhibitors
Leslie A Parsels1, David Karnak1, Joshua D Parsels1
1Department of Radiation Oncology, University of Michigan Medical School, Ann Arbor, Michigan.
Abstract:
KRAS mutations in non-small cell lung cancer (NSCLC) cause increased levels of DNA damage and replication stress, suggesting that inhibition of the DNA damage response (DDR) is a promising strategy for radiosensitization of NSCLC. This study investigates the ability of a WEE1 inhibitor (AZD1775) and a PARP inhibitor (olaparib) to radiosensitize KRAS-mutant NSCLC cells and tumors. In addition to inhibiting the DDR, these small-molecule inhibitors of WEE1 and PARP induce DNA replication stress via nucleotide exhaustion and PARP trapping, respectively. As monotherapy, AZD1775 or olaparib alone modestly radiosensitized a panel of KRAS-mutant NSCLC lines. The combination of agents, however, significantly increased radiosensitization. Furthermore, AZD1775-mediated radiosensitization was rescued by nucleotide repletion, suggesting a mechanism involving AZD1775-mediated replication stress. In contrast, radiosensitization by the combination of AZD1775 and olaparib was not rescued by nucleosides. Whereas both veliparib, a PARP inhibitor that does not efficiently trap PARP1 to chromatin, and PARP1 depletion radiosensitized NSCLC cells as effectively as olaparib, which does efficiently trap PARP, only olaparib potentiated AZD1775-mediated radiosensitization. Taken together, these mechanistic data demonstrate that although nucleotide depletion is sufficient for radiosensitization by WEE1 inhibition alone, and inhibition of PARP catalytic activity is sufficient for radiosensitization by olaparib alone, PARP1 trapping is required for enhanced radiosensitization by the combination of WEE1 and PARP inhibitors.Implications: This study highlights DNA replication stress caused by nucleotide depletion and PARP1 trapping as an important mechanism of radiosensitization in KRAS-mutant tumors and supports further development of DNA replication as a therapeutic target. Mol Cancer Res; 16(2); 222-32. ©2017 AACR.
Insights
Combining WEE1 and PARP inhibitors enhances radiosensitization in KRAS-mutant non-small cell lung cancer by inducing DNA replication stress. PARP1 trapping is crucial for this combined effect, highlighting DNA replication as a therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- KRAS mutations in non-small cell lung cancer (NSCLC) lead to DNA damage and replication stress.
- Targeting the DNA damage response (DDR) is a potential strategy for radiosensitizing NSCLC.
- WEE1 and PARP inhibitors are investigated for their ability to radiosensitize KRAS-mutant NSCLC.
Purpose of the Study:
- To investigate the radiosensitizing effects of WEE1 inhibitor AZD1775 and PARP inhibitor olaparib in KRAS-mutant NSCLC.
- To elucidate the mechanisms underlying radiosensitization by these agents, focusing on DNA replication stress.
- To determine the specific role of PARP1 trapping in combination therapy.
Main Methods:
- Treatment of KRAS-mutant NSCLC cell lines and tumors with AZD1775 and/or olaparib.
- Assessment of radiosensitization effects in monotherapy and combination treatments.
- Mechanistic studies involving nucleotide repletion and evaluation of PARP1 trapping and catalytic inhibition.
Main Results:
- Both AZD1775 and olaparib showed modest radiosensitization as monotherapy.
- The combination of AZD1775 and olaparib significantly enhanced radiosensitization.
- AZD1775-induced radiosensitization was linked to nucleotide depletion, while combination therapy required PARP1 trapping.
Conclusions:
- Nucleotide depletion is sufficient for radiosensitization by WEE1 inhibition alone.
- PARP1 trapping, not just catalytic inhibition, is essential for the enhanced radiosensitization observed with combined WEE1 and PARP inhibition.
- Targeting DNA replication stress, particularly through PARP1 trapping, is a promising strategy for radiosensitizing KRAS-mutant NSCLC.
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