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PARP Inhibition in Cancer: An Update on Clinical Development
Esha Sachdev1, Roya Tabatabai1, Varun Roy2
1Division of Medical Oncology, Samuel Oschin Comprehensive Cancer Institute, Cedars-Sinai Medical Center, Los Angeles, CA, USA.
Abstract:
PARP (poly(ADP-ribose) polymerase) inhibitors represent a novel class of anti-cancer therapy; they take advantage of synthetic lethality and induce cell death by exploiting a defect in DNA repair. This class of medication was initially evaluated in patients with BRCA-associated tumors, but efficacy was also demonstrated in other populations. Since 2014, four PARP inhibitors have been approved in various indications: olaparib, niraparib, and rucaparib in high-grade serous ovarian cancer, and olaparib and talazoparib in metastatic breast cancer. The exact indications and study populations vary slightly between the different approvals in both disease states but there is significant overlap. PARP inhibitors continue to be investigated in ongoing clinical trials. In line with other targeted therapies, benefit appears to be strongest in a distinct population of patients with BRCA mutations or other defects in homologous recombination repair. Combination therapies, which include anti-angiogenesis agents and immunotherapy, show promise as a strategy to broaden efficacy for unselected patients. Initial studies of PARP inhibitors in combination with chemotherapy were limited by toxicity, but further studies are underway. To date, head-to-head trials comparing various PARP inhibitors have not been conducted, so questions remain in terms of choosing a PARP inhibitor to administer when indications overlap, as well as how to sequence these medications. Here we review both completed and ongoing clinical trials involving PARP inhibitors and mechanisms of resistance to this class of drugs.
Insights
Poly(ADP-ribose) polymerase (PARP) inhibitors are a novel cancer therapy exploiting DNA repair defects. Ongoing trials explore their use in various cancers, with combination therapies showing promise.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Poly(ADP-ribose) polymerase (PARP) inhibitors represent a novel class of anti-cancer therapy.
- They induce cell death by exploiting DNA repair defects through synthetic lethality.
- Initially evaluated in BRCA-associated tumors, their efficacy extends to other patient populations.
Purpose of the Study:
- To review completed and ongoing clinical trials of PARP inhibitors.
- To discuss mechanisms of resistance to PARP inhibitors.
- To address questions regarding optimal selection and sequencing of PARP inhibitors.
Main Methods:
- Review of completed and ongoing clinical trials involving PARP inhibitors.
- Analysis of efficacy in BRCA-mutated and other homologous recombination repair-deficient tumors.
- Exploration of combination therapies (anti-angiogenesis, immunotherapy, chemotherapy) and their associated toxicities.
Main Results:
- Four PARP inhibitors (olaparib, niraparib, rucaparib, talazoparib) are approved for ovarian and breast cancers.
- Benefit is most pronounced in patients with BRCA mutations or homologous recombination repair defects.
- Combination therapies show potential for broader efficacy, though early chemotherapy combinations faced toxicity challenges.
Conclusions:
- PARP inhibitors are established targeted therapies, particularly for BRCA-mutated cancers.
- Ongoing research focuses on expanding their utility through combination strategies and understanding resistance mechanisms.
- Further head-to-head trials are needed to guide optimal clinical use and sequencing.
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