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Olaparib-induced Adaptive Response Is Disrupted by FOXM1 Targeting that Enhances Sensitivity to PARP Inhibition
Pingping Fang1, Jill A Madden2, Lisa Neums2
1Department of Pharmacology, Toxicology, and Therapeutics, University of Kansas Medical Center, Kansas City, Kansas.
Abstract:
FOXM1 transcription factor network is activated in over 84% of cases in high-grade serous ovarian cancer (HGSOC), and FOXM1 upregulates the expression of genes involved in the homologous recombination (HR) DNA damage and repair (DDR) pathway. However, the role of FOXM1 in PARP inhibitor response has not yet been studied. This study demonstrates that PARP inhibitor (PARPi), olaparib, induces the expression and nuclear localization of FOXM1. On the basis of ChIP-qPCR, olaparib enhances the binding of FOXM1 to genes involved in HR repair. FOXM1 knockdown by RNAi or inhibition by thiostrepton decreases FOXM1 expression, decreases the expression of HR repair genes, such as BRCA1 and RAD51, and enhances sensitivity to olaparib. Comet and PARP trapping assays revealed increases in DNA damage and PARP trapping in FOXM1-inhibited cells treated with olaparib. Finally, thiostrepton decreases the expression of BRCA1 in rucaparib-resistant cells and enhances sensitivity to rucaparib. Collectively, these results identify that FOXM1 plays an important role in the adaptive response induced by olaparib and FOXM1 inhibition by thiostrepton induces "BRCAness" and enhances sensitivity to PARP inhibitors.Implications: FOXM1 inhibition represents an effective strategy to overcome resistance to PARPi, and targeting FOXM1-mediated adaptive pathways may produce better therapeutic effects for PARP inhibitors. Mol Cancer Res; 16(6); 961-73. ©2018 AACR.
Insights
FOXM1 activates DNA repair genes in ovarian cancer. Inhibiting FOXM1 with thiostrepton enhances sensitivity to PARP inhibitors like olaparib and rucaparib, offering a new strategy against cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- FOXM1 transcription factor network is active in most high-grade serous ovarian cancers (HGSOC).
- FOXM1 regulates genes in the homologous recombination (HR) DNA damage and repair (DDR) pathway.
- The role of FOXM1 in response to PARP inhibitors (PARPi) was previously unstudied.
Purpose of the Study:
- To investigate the role of FOXM1 in PARPi response in HGSOC.
- To determine if FOXM1 inhibition can overcome PARPi resistance.
Main Methods:
- ChIP-qPCR to assess FOXM1 binding to HR repair genes.
- RNAi and thiostrepton to inhibit FOXM1.
- Comet and PARP trapping assays to measure DNA damage.
- Assessment of sensitivity to olaparib and rucaparib.
Main Results:
- Olaparib treatment increased FOXM1 expression and nuclear localization.
- Olaparib enhanced FOXM1 binding to HR repair genes.
- FOXM1 inhibition decreased HR repair gene expression (e.g., BRCA1, RAD51) and increased sensitivity to olaparib.
- FOXM1 inhibition increased DNA damage and PARP trapping with olaparib.
- Thiostrepton decreased BRCA1 in rucaparib-resistant cells and enhanced sensitivity to rucaparib.
Conclusions:
- FOXM1 is crucial in the adaptive response to olaparib.
- FOXM1 inhibition induces "BRCAness" and enhances sensitivity to PARP inhibitors.
- Targeting FOXM1 is a promising strategy to overcome PARPi resistance in ovarian cancer.
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