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Visualizing DNA Damage Repair Proteins in Patient-Derived Ovarian Cancer Organoids via Immunofluorescence Assays
Published on: February 24, 2023
Gynecologic Cancers: Emerging Novel Strategies for Targeting DNA Repair Deficiency
Rebecca S Kristeleit1, Rowan E Miller1, Elise C Kohn1
1From the Department of Medical Oncology, University College London Hospital, London, United Kingdom; UCL Cancer Institute, University College London, London, United Kingdom; Clinical Investigations Branch, Cancer Therapy Evaluation Program, National Cancer Institute, Bethesda, MD.
Abstract:
The presence of a BRCA mutation, somatic or germline, is now established as a standard of care for selecting patients with ovarian cancer for treatment with a PARP inhibitor. During the clinical development of the PARP inhibitor class of agents, a subset of women without BRCA mutations were shown to respond to these drugs (termed "BRCAness"). It was hypothesized that other genetic abnormalities causing a homologous recombinant deficiency (HRD) were sensitizing the BRCA wild-type cancers to PARP inhibition. The molecular basis for these other causes of HRD are being defined. They include individual gene defects (e.g., RAD51 mutation, CHEK2 mutation), homozygous somatic loss, and whole genome properties such as genomic scarring. Testing this knowledge is possible when selecting patients to receive molecular therapy targeting DNA repair, not only for patients with ovarian cancer but also endometrial and cervical cancers. The validity of HRD assays and multiple gene sequencing panels to select a broader population of patients for treatment with PARP inhibitor therapy is under evaluation. Other non-HRD targets for exploiting DNA repair defects in gynecologic cancers include mismatch repair (MMR), checkpoint signaling, and nonhomologous end-joining (NHEJ) DNA repair. This article describes recent evidence supporting strategies in addition to BRCA mutation for selecting patients for treatment with PARP inhibitor therapy. Additionally, the challenges and opportunities of exploiting DNA repair pathways other than homologous recombination for molecular therapy in gynecologic cancers is discussed.
Insights
Identifying homologous recombination deficiency (HRD) beyond BRCA mutations helps select gynecologic cancer patients for PARP inhibitor therapy. This broadens eligibility for DNA repair-targeted treatments.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- BRCA mutations are standard for PARP inhibitor selection in ovarian cancer.
- Some BRCA wild-type cancers respond to PARP inhibitors, termed "BRCAness", suggesting other homologous recombination deficiency (HRD) causes.
- Understanding these alternative HRD mechanisms is crucial for expanding targeted therapy.
Purpose of the Study:
- To review evidence supporting patient selection for PARP inhibitors beyond BRCA mutations.
- To discuss the molecular basis of HRD in BRCA wild-type cancers.
- To explore challenges and opportunities in targeting DNA repair pathways in gynecologic cancers.
Main Methods:
- Review of recent scientific evidence and clinical development data.
- Analysis of molecular mechanisms underlying homologous recombination deficiency (HRD).
- Evaluation of HRD assays and gene sequencing panels for patient stratification.
Main Results:
- Beyond BRCA mutations, other genetic defects (e.g., RAD51, CHEK2 mutations, somatic loss, genomic scarring) cause HRD.
- HRD assays and gene panels are being evaluated to identify a wider patient population for PARP inhibitors.
- Non-HRD targets like mismatch repair (MMR), checkpoint signaling, and NHEJ are also being investigated.
Conclusions:
- Patient selection for PARP inhibitors can be expanded by considering HRD beyond BRCA mutations.
- Targeting diverse DNA repair pathways offers new therapeutic strategies for gynecologic cancers.
- Further research is needed to validate HRD assays and explore novel non-HRD targets.
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