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Updated: Jun 17, 2025

Functional Assessment of BRCA1 variants using CRISPR-Mediated Base Editors
Published on: February 28, 2021
BRCA1 secondary splice-site mutations drive exon-skipping and PARP inhibitor resistance
Ksenija Nesic1,2, John J Krais3,4, Yifan Wang3
1The Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia.
Abstract:
PARP inhibitor (PARPi) therapy has transformed outcomes for patients with homologous recombination DNA repair (HRR) deficient ovarian cancers, for example those with BRCA1 or BRCA2 gene defects. Unfortunately, PARPi resistance is common. Multiple resistance mechanisms have been described, including secondary mutations that restore the HR gene reading frame. BRCA1 splice isoforms △11 and △11q can contribute to PARPi resistance by splicing out the mutation-containing exon, producing truncated, partially functional proteins. However, the clinical impacts and underlying drivers of BRCA1 exon skipping are not fully understood.We analyzed nine ovarian and breast cancer patient derived xenografts (PDX) with BRCA1 exon 11 frameshift mutations for exon skipping and therapy response, including a matched PDX pair derived from a patient pre- and post-chemotherapy/PARPi. BRCA1 exon 11 skipping was elevated in PARPi resistant PDX tumors. Two independent PDX models acquired secondary BRCA1 splice site mutations (SSMs) that drive exon skipping, confirmed using qRT-PCR, RNA sequencing, immunoblotting and minigene modelling. CRISPR/Cas9-mediated disruption of splicing functionally validated exon skipping as a mechanism of PARPi resistance. SSMs were also enriched in post-PARPi ovarian cancer patient cohorts from the ARIEL2 and ARIEL4 clinical trials.Few PARPi resistance mechanisms have been confirmed in the clinical setting. While secondary/reversion mutations typically restore a gene's reading frame, we have identified secondary mutations in patient cohorts that hijack splice sites to enhance mutation-containing exon skipping, resulting in the overexpression of BRCA1 hypomorphs, which in turn promote PARPi resistance. Thus, BRCA1 SSMs can and should be clinically monitored, along with frame-restoring secondary mutations.
Insights
PARP inhibitor resistance in ovarian cancer can occur through BRCA1 exon skipping, driven by secondary splice site mutations. Monitoring these mutations offers a new strategy for overcoming treatment resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- PARP inhibitor (PARPi) therapy is effective for homologous recombination repair (HRR) deficient ovarian cancers, particularly those with BRCA1/2 mutations.
- PARPi resistance is a significant clinical challenge, with various mechanisms identified, including secondary mutations.
- BRCA1 splice isoforms, like △11 and △11q, can promote PARPi resistance by altering protein function, but their clinical relevance is not fully understood.
Discussion:
- This study investigated BRCA1 exon 11 skipping in patient-derived xenografts (PDX) and clinical cohorts.
- Secondary BRCA1 splice site mutations (SSMs) were identified as drivers of exon skipping, leading to PARPi resistance.
- Functional validation confirmed that enhanced exon skipping confers PARPi resistance.
Key Insights:
- BRCA1 exon 11 skipping is elevated in PARPi-resistant ovarian cancer PDX models.
- Secondary mutations hijacking splice sites enhance BRCA1 exon skipping, promoting PARPi resistance.
- SSMs are enriched in ovarian cancer patients treated with PARPi, indicating clinical relevance.
Outlook:
- BRCA1 SSMs represent a novel, clinically relevant mechanism of PARPi resistance.
- Monitoring BRCA1 SSMs alongside frame-restoring mutations could guide treatment strategies.
- Further research into splice site mutations may reveal new therapeutic targets for overcoming PARPi resistance.
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