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Published on: April 28, 2021
Ivabradine induces RAD51 degradation, potentiating PARP inhibitor efficacy in non-germline BRCA pathogenic variant
Ho Tsoi1, George Man Hong Leung1, Ellen Pui Sum Man1
1Department of Pathology, School of Clinical Medicine, Li Ka Shing Faculty of Medicine, The University of Hong Kong, Pokfulam, Hong Kong SAR, China.
Background:
Triple-negative breast cancer (TNBC) is an aggressive subtype lacking targetable proteins for treatment. PARP inhibitors (PARPi) are effective in BRCA-mutated cancers but have limited utility in non-germline BRCA-mutated (non-gBRCAm) TNBC. We hypothesized that inducing BRCAness by targeting RAD51, a key homologous recombination protein, could sensitize non-gBRCAm TNBC to PARPi.
Methods:
EGFP-tagged RAD51 was generated and EGFP signal was monitored for identifying agents that affected RAD51 protein expression and stability. Cell viability was assayed using cell counting kit-8. Synergism of ivabradine and olaparib was determined using SynergyFinder 3.0. DR-GFP, EJ5-GFP and comet assays were employed to evaluate the degree of DNA repair and damage, respectively. Protein and mRNA levels were determined by western blot and qPCR, respectively. ChIP was used to determine the binding to ATF6 to the promoter of FBXO24. CoIP was employed to determine the interaction between RAD51 and FBXO24. Xenografts on nude mice and PDTX were in vivo models for validating the combined effect of ivabradine and olaparib.
Results:
Using an EGFP-RAD51 reporter, we identified ivabradine as a RAD51-reducing agent. In vitro studies with TNBC cell lines demonstrated that ivabradine synergized with PARPi to reduce cell viability (ZIP score > 10), induce apoptosis, and impair HR-mediated DNA repair. This synergy was confirmed in vivo using xenografts and patient-derived tumor xenografts, where co-treatment with clinical grade ivabradine (Coralan) and PARPi olaparib (Lynparza) led to substantial tumor growth inhibition without notable toxicity. Mechanistically, ivabradine triggered ER stress, activating ATF6 to upregulate FBXO24-dependent ubiquitination, leading to RAD51 degradation, resulting in the condition of BRCAness. Chromatin immunoprecipitation and co-immunoprecipitation confirmed the ATF6-FBXO24-RAD51 cascade. These findings reveal a novel mechanism by which ivabradine, an FDA-approved cardiac drug, induces BRCAness, by degrading RAD51 via the ATF6-FBXO24 axis, thus, by mimicking HR deficiency hypersensitizes BRCA-proficient TNBC to olaparib.
Conclusion:
This study highlights the translational potential of repurposing ivabradine as a therapeutic strategy for non-gBRCAm TNBC. By addressing a critical unmet need of this aggressive breast cancer subtype, it can potentially expand the utility of PARPi.
Insights
Repurposing the cardiac drug ivabradine induces BRCAness in triple-negative breast cancer (TNBC) by degrading RAD51. This approach sensitizes non-germline BRCA-mutated TNBC to PARP inhibitors, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Triple-negative breast cancer (TNBC) is an aggressive subtype lacking targeted therapies.
- PARP inhibitors (PARPi) show efficacy in BRCA-mutated cancers but have limited use in non-germline BRCA-mutated (non-gBRCAm) TNBC.
- Targeting RAD51 to induce BRCAness is a potential strategy to sensitize non-gBRCAm TNBC to PARPi.
Purpose of the Study:
- To identify agents that can induce BRCAness in non-gBRCAm TNBC.
- To investigate the synergistic effect of ivabradine and olaparib in TNBC.
- To elucidate the molecular mechanism by which ivabradine induces BRCAness.
Main Methods:
- Utilized an EGFP-RAD51 reporter to screen for RAD51-modulating agents.
- Assessed cell viability, apoptosis, and DNA repair using cell counting kit-8, DR-GFP, EJ5-GFP, and comet assays.
- Employed western blot, qPCR, ChIP, and CoIP to determine molecular interactions and pathways.
- Validated findings in vivo using xenograft and patient-derived tumor xenograft (PDTX) models.
Main Results:
- Ivabradine was identified as an agent that reduces RAD51 protein levels.
- Ivabradine synergized with olaparib in TNBC cell lines, reducing viability and impairing DNA repair.
- Co-treatment with ivabradine and olaparib significantly inhibited tumor growth in vivo with minimal toxicity.
- Ivabradine induces ER stress, activating ATF6 to upregulate FBXO24, leading to RAD51 degradation and BRCAness.
Conclusions:
- Ivabradine, an FDA-approved cardiac drug, can be repurposed to induce BRCAness in TNBC.
- The ATF6-FBXO24 axis mediates ivabradine-induced RAD51 degradation and subsequent BRCAness.
- This strategy holds translational potential for treating non-gBRCAm TNBC and expanding PARPi utility.
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