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Targeted radiosensitization of ETS fusion-positive prostate cancer through PARP1 inhibition
Sumin Han1, J Chad Brenner, Aaron Sabolch
1Department of Radiation Oncology, University of Michigan Medical School, Ann Arbor, MI.
Abstract:
ETS gene fusions, which result in overexpression of an ETS transcription factor, are considered driving mutations in approximately half of all prostate cancers. Dysregulation of ETS transcription factors is also known to exist in Ewing's sarcoma, breast cancer, and acute lymphoblastic leukemia. We previously discovered that ERG, the predominant ETS family member in prostate cancer, interacts with the DNA damage response protein poly (ADP-ribose) polymerase 1 (PARP1) in human prostate cancer specimens. Therefore, we hypothesized that the ERG-PARP1 interaction may confer radiation resistance by increasing DNA repair efficiency and that this radio-resistance could be reversed through PARP1 inhibition. Using lentiviral approaches, we established isogenic models of ERG overexpression in PC3 and DU145 prostate cancer cell lines. In both cell lines, ERG overexpression increased clonogenic survival following radiation by 1.25 (±0.07) fold (mean ± SEM) and also resulted in increased PARP1 activity. PARP1 inhibition with olaparib preferentially radiosensitized ERG-positive cells by a factor of 1.52 (±0.03) relative to ERG-negative cells (P < .05). Neutral and alkaline COMET assays and immunofluorescence microscopy assessing γ-H2AX foci showed increased short- and long-term efficiencies of DNA repair, respectively, following radiation that was preferentially reversed by PARP1 inhibition. These findings were verified in an in vivo xenograft model. Our findings demonstrate that ERG overexpression confers radiation resistance through increased efficiency of DNA repair following radiation that can be reversed through inhibition of PARP1. These results motivate the use of PARP1 inhibitors as radiosensitizers in patients with localized ETS fusion-positive cancers.
Insights
ERG overexpression in prostate cancer promotes radiation resistance by enhancing DNA repair. PARP1 inhibition reverses this resistance, suggesting PARP1 inhibitors as radiosensitizers for ETS fusion-positive cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- ETS gene fusions are key drivers in ~50% of prostate cancers.
- ERG, a predominant ETS factor in prostate cancer, interacts with PARP1.
- This interaction is hypothesized to mediate radiation resistance via DNA repair.
Purpose of the Study:
- To investigate if ERG-PARP1 interaction confers radiation resistance.
- To determine if PARP1 inhibition can reverse ERG-mediated radioresistance.
- To explore the potential of PARP1 inhibitors as radiosensitizers in ETS fusion-positive cancers.
Main Methods:
- Established isogenic models of ERG overexpression in prostate cancer cell lines (PC3, DU145).
- Assessed clonogenic survival, PARP1 activity, and DNA repair efficiency (COMET assays, γ-H2AX foci) post-radiation.
- Utilized PARP1 inhibitor olaparib and validated findings in an in vivo xenograft model.
Main Results:
- ERG overexpression increased radiation survival by 1.25-fold and enhanced PARP1 activity.
- Olaparib preferentially radiosensitized ERG-positive cells (1.52-fold increase).
- PARP1 inhibition reversed ERG-mediated increases in DNA repair efficiency.
Conclusions:
- ERG overexpression confers radiation resistance through enhanced DNA repair.
- PARP1 inhibition effectively reverses this radioresistance.
- PARP1 inhibitors show promise as radiosensitizers for localized ETS fusion-positive cancers.
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