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Updated: Jul 24, 2025

Assessment of Global DNA Double-Strand End Resection using BrdU-DNA Labeling coupled with Cell Cycle Discrimination Imaging
Published on: April 28, 2021
PBRM1 mutations might render a subtype of biliary tract cancers sensitive to drugs targeting the DNA damage repair
Kai Zimmer1, Florian Kocher1, Gerold Untergasser1,2
1Department of Hematology and Oncology, Comprehensive Cancer Center Innsbruck (CCCI), Medical University Innsbruck (MUI), Innsbruck, Austria.
Abstract:
Polybromo-1 (PBRM1) loss of function mutations are present in a fraction of biliary tract cancers (BTCs). PBRM1, a subunit of the PBAF chromatin-remodeling complex, is involved in DNA damage repair. Herein, we aimed to decipher the molecular landscape of PBRM1 mutated (mut) BTCs and to define potential translational aspects. Totally, 1848 BTC samples were analyzed using next-generation DNA-sequencing and immunohistochemistry (Caris Life Sciences, Phoenix, AZ). siRNA-mediated knockdown of PBRM1 was performed in the BTC cell line EGI1 to assess the therapeutic vulnerabilities of ATR and PARP inhibitors in vitro. PBRM1 mutations were identified in 8.1% (n = 150) of BTCs and were more prevalent in intrahepatic BTCs (9.9%) compared to gallbladder cancers (6.0%) or extrahepatic BTCs (4.5%). Higher rates of co-mutations in chromatin-remodeling genes (e.g., ARID1A 31% vs. 16%) and DNA damage repair genes (e.g., ATRX 4.4% vs. 0.3%) were detected in PBRM1-mutated (mut) vs. PBRM1-wildtype (wt) BTCs. No difference in real-world overall survival was observed between PBRM1-mut and PBRM1-wt patients (HR 1.043, 95% CI 0.821-1.325, p = 0.731). In vitro, experiments suggested that PARP ± ATR inhibitors induce synthetic lethality in the PBRM1 knockdown BTC model. Our findings served as the scientific rationale for PARP inhibition in a heavily pretreated PBRM1-mut BTC patient, which induced disease control. This study represents the largest and most extensive molecular profiling study of PBRM1-mut BTCs, which in vitro sensitizes to DNA damage repair inhibiting compounds. Our findings might serve as a rationale for future testing of PARP/ATR inhibitors in PBRM1-mut BTCs.
Insights
Loss of function mutations in Polybromo-1 (PBRM1) are found in biliary tract cancers (BTCs). PBRM1-mutated BTCs show increased co-mutations and may respond to PARP and ATR inhibitors, suggesting new therapeutic strategies.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Polybromo-1 (PBRM1) loss-of-function mutations occur in a subset of biliary tract cancers (BTCs).
- PBRM1 is a key component of the PBAF chromatin-remodeling complex and plays a role in DNA damage repair.
- Understanding the molecular characteristics of PBRM1-mutated BTCs is crucial for identifying potential therapeutic targets.
Purpose of the Study:
- To investigate the molecular landscape of PBRM1-mutated BTCs.
- To identify potential therapeutic vulnerabilities associated with PBRM1 mutations.
- To explore the translational implications of PBRM1 alterations in BTC treatment.
Main Methods:
- Analysis of 1848 BTC samples using next-generation DNA sequencing and immunohistochemistry.
- siRNA-mediated knockdown of PBRM1 in the EGI1 BTC cell line.
- In vitro assessment of therapeutic responses to ATR and PARP inhibitors.
Main Results:
- PBRM1 mutations were identified in 8.1% of BTCs, with higher prevalence in intrahepatic BTCs.
- PBRM1-mutated BTCs exhibited increased co-mutations in chromatin-remodeling and DNA damage repair genes.
- In vitro studies demonstrated synthetic lethality with PARP and/or ATR inhibitors in PBRM1-deficient BTC models.
- A PBRM1-mutated BTC patient achieved disease control with PARP inhibition.
Conclusions:
- PBRM1 mutations are associated with distinct molecular features in BTCs.
- PBRM1-mutated BTCs show in vitro sensitivity to DNA damage repair inhibitors, including PARP and ATR inhibitors.
- These findings provide a rationale for investigating PARP/ATR inhibitors in PBRM1-mutated BTC patients.
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