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Published on: May 2, 2025
CDK Inhibition Primes for Anti-PD-L1 Treatment in Triple-Negative Breast Cancer Models
Anthony Cheung1,2, Alicia M Chenoweth1,2, Jelmar Quist2
1St. John's Institute of Dermatology, School of Basic & Medical Biosciences, King's College London, Guy's Hospital, London SE1 9RT, UK.
Abstract:
Triple-negative breast cancers (TNBC) expressing PD-L1 qualify for checkpoint inhibitor immunotherapy. Cyclin E/CDK2 is a potential target axis in TNBC; however, small-molecule drugs at efficacious doses may be associated with toxicity, and treatment alongside immunotherapy requires investigation. We evaluated CDK inhibition at suboptimal levels and its anti-tumor and immunomodulatory effects. Transcriptomic analyses of primary breast cancers confirmed higher cyclin E/CDK2 expression in TNBC compared with non-TNBC. Out of the three CDK2-targeting inhibitors tested, the CDK 2, 7 and 9 inhibitor SNS-032 was the most potent in reducing TNBC cell viability and exerted cytotoxicity against all eight TNBC cell lines evaluated in vitro. Suboptimal SNS-032 dosing elevated cell surface PD-L1 expression in surviving TNBC cells. In mice engrafted with human immune cells and challenged with human MDA-MB-231 TNBC xenografts in mammary fat pads, suboptimal SNS-032 dosing partially restricted tumor growth, enhanced the tumor infiltration of human CD45+ immune cells and elevated cell surface PD-L1 expression in surviving cancer cells. In tumor-bearing mice engrafted with human immune cells, the anti-PD-L1 antibody avelumab, given sequentially following suboptimal SNS-032 dosing, reduced tumor growth compared with SNS-032 alone or with avelumab without prior SNS-032 priming. CDK inhibition at suboptimal doses promotes immune cell recruitment to tumors, PD-L1 expression by surviving TNBC cells and may complement immunotherapy.
Insights
Suboptimal CDK inhibition, using SNS-032, enhances PD-L1 expression and immune cell infiltration in triple-negative breast cancer (TNBC). This approach may improve immunotherapy efficacy when combined with PD-L1 blockade.
Area of Science:
- Oncology
- Immunology
- Pharmacology
Background:
- Triple-negative breast cancer (TNBC) is a challenging subtype.
- PD-L1 expression in TNBC indicates eligibility for immunotherapy.
- Cyclin E/CDK2 is a potential therapeutic target in TNBC, but high-dose inhibitors may cause toxicity.
Purpose of the Study:
- To investigate the anti-tumor and immunomodulatory effects of suboptimal CDK inhibition in TNBC.
- To evaluate the combination of suboptimal CDK inhibition with PD-L1 blockade for enhanced anti-cancer activity.
Main Methods:
- Transcriptomic analysis of primary breast cancers to assess Cyclin E/CDK2 expression.
- In vitro evaluation of CDK2-targeting inhibitors, including SNS-032, on TNBC cell lines.
- In vivo studies using TNBC xenograft models with human immune cells to assess tumor growth, immune infiltration, and PD-L1 expression.
- Sequential treatment with suboptimal SNS-032 and anti-PD-L1 antibody (avelumab).
Main Results:
- TNBC exhibits higher Cyclin E/CDK2 expression compared to non-TNBC.
- Suboptimal SNS-032 treatment reduced TNBC cell viability, increased cell surface PD-L1 expression, and enhanced immune cell infiltration in tumors.
- Sequential treatment with suboptimal SNS-032 and avelumab significantly reduced tumor growth compared to monotherapy.
Conclusions:
- Suboptimal CDK inhibition can promote immune cell recruitment and PD-L1 expression in TNBC.
- This strategy may enhance the effectiveness of PD-L1 targeted immunotherapy in TNBC.
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