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BCL-XL blockage in TNBC models confers vulnerability to inhibition of specific cell cycle regulators
Olivier Castellanet1, Fahmida Ahmad1, Yaron Vinik2
1Aix Marseille Univ, CNRS, Developmental Biology Institute of Marseille (IBDM), Turing Center for Living Systems, Parc Scientifique de Luminy, Marseille (France).
Abstract:
Cell cycle regulators are frequently altered in Triple-Negative Breast Cancer (TNBC). Emerging agents targeting these signals offer the possibility to design new combinatorial therapies. However, preclinical models that recapitulate TNBC primary resistance and heterogeneity are essential to evaluate the potency of these combined treatments. Methods: Bioinformatic processing of human breast cancer datasets was used to analyse correlations between expression levels of cell cycle regulators and patient survival outcome. The MMTV-R26 mouse model of TNBC resistance and heterogeneity was employed to analyse expression and targeting vulnerability of cell cycle regulators in the presence of BCL-XL blockage. Robustness of outcomes and selectivity was further explored using a panel of human breast cancer cells. Orthotopic studies in nude mice were applied for preclinical evaluation of efficacy and toxicity. Alterations of protein expression, phosphorylation, and/or cellular localisation were analysed by western blots, reverse phase protein array, and immunocytochemistry. Bioinformatics was performed to highlight drug's mechanisms of action. Results: We report that high expression levels of the BCL2L1 gene encoding BCL-XL and of specific cell cycle regulators correlate with poor survival outcomes of TNBC patients. Blockage of BCL-XL confers vulnerability to drugs targeting CDK1/2/4, but not FOXM1, CDK4/6, Aurora A and Aurora B, to all MMTV-R26 and human TNBC cell lines tested. Combined blockage of BCL-XL and CDK1/2/4 interfered with tumour growth in vivo. Mechanistically, we show that, co-targeting of BCL-XL and CDK1/2/4 synergistically inhibited cell viability by combinatorial depletion of survival and RTK/AKT signals, and concomitantly restoring FOXO3a tumour suppression actions. This was accompanied by an accumulation of DNA damage and consequently apoptosis. Conclusions: Our studies illustrate the possibility to exploit the vulnerability of TNBC cells to CDK1/2/4 inhibition by targeting BCL-XL. Moreover, they underline that specificity matters in targeting cell cycle regulators for combinatorial anticancer therapies.
Insights
Targeting BCL-XL in triple-negative breast cancer (TNBC) sensitizes cells to CDK1/2/4 inhibitors. This combination therapy, validated in preclinical models, offers a novel strategy for treating TNBC by inducing apoptosis and DNA damage.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cell cycle dysregulation is common in triple-negative breast cancer (TNBC).
- Developing effective combinatorial therapies for TNBC requires robust preclinical models that reflect its heterogeneity and primary resistance.
- Identifying specific vulnerabilities in TNBC is crucial for targeted treatment strategies.
Purpose of the Study:
- To investigate the correlation between cell cycle regulators and survival in TNBC patients.
- To evaluate the efficacy of targeting cell cycle regulators in combination with BCL-XL inhibition in TNBC models.
- To elucidate the molecular mechanisms underlying the synergistic effects of combined BCL-XL and CDK1/2/4 inhibition.
Main Methods:
- Bioinformatic analysis of human breast cancer datasets to correlate gene expression with survival.
- Utilized the MMTV-R26 mouse model and human TNBC cell lines to assess drug vulnerability.
- Performed orthotopic studies in mice for preclinical efficacy and toxicity evaluation.
- Analyzed protein expression, phosphorylation, and localization using western blots, RPPA, and immunocytochemistry.
Main Results:
- High BCL-XL and specific cell cycle regulator expression correlate with poor TNBC patient survival.
- BCL-XL inhibition sensitized TNBC cells to CDK1/2/4 inhibitors, but not other tested agents.
- Combined BCL-XL and CDK1/2/4 blockade synergistically reduced tumor growth in vivo.
- The combination therapy induced apoptosis and DNA damage by inhibiting survival signals and restoring tumor suppressor functions.
Conclusions:
- Targeting BCL-XL creates a vulnerability to CDK1/2/4 inhibition in TNBC.
- Combination therapy of BCL-XL and CDK1/2/4 inhibitors shows preclinical promise for TNBC treatment.
- Specificity in targeting cell cycle regulators is critical for successful combinatorial anticancer therapies.
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