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Low-Molecular Weight Cyclin E Confers a Vulnerability to PKMYT1 Inhibition in Triple-Negative Breast Cancer
Mi Li1, Amriti R Lulla1, Yan Wang1
1Department of Experimental Radiation Oncology, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Cyclin E is a regulatory subunit of CDK2 that mediates S phase entry and progression. The cleavage of full-length cyclin E (FL-cycE) to low-molecular weight isoforms (LMW-E) dramatically alters substrate specificity, promoting G1-S cell cycle transition and accelerating mitotic exit. Approximately 70% of triple-negative breast cancers (TNBC) express LMW-E, which correlates with poor prognosis. PKMYT1 also plays an important role in mitosis by inhibiting CDK1 to block premature mitotic entry, suggesting it could be a therapeutic target in TNBC expressing LMW-E. In this study, analysis of tumor samples of patients with TNBC revealed that coexpression of LMW-E and PKMYT1-catalyzed CDK1 phosphorylation predicted poor response to neoadjuvant chemotherapy. Compared with FL-cycE, LMW-E specifically upregulates PKMYT1 expression and protein stability, thereby increasing CDK1 phosphorylation. Inhibiting PKMYT1 with the selective inhibitor RP-6306 (lunresertib) elicited LMW-E-dependent antitumor effects, accelerating premature mitotic entry, inhibiting replication fork restart, and enhancing DNA damage, chromosomal breakage, apoptosis, and replication stress. Importantly, TNBC cell line xenografts expressing LMW-E showed greater sensitivity to RP-6306 than tumors with empty vector or FL-cycE. Furthermore, RP-6306 exerted tumor suppressive effects in LMW-E transgenic murine mammary tumors and patient-derived xenografts of LMW-E-high TNBC but not in the LMW-E null models examined in parallel. Lastly, transcriptomic and immune profiling demonstrated that RP-6306 treatment induced interferon responses and T-cell infiltration in the LMW-E-high tumor microenvironment, enhancing the antitumor immune response. These findings highlight the LMW-E/PKMYT1/CDK1 regulatory axis as a promising therapeutic target in TNBC, providing the rationale for further clinical development of PKMYT1 inhibitors in this aggressive breast cancer subtype. Significance: PKMYT1 upregulation and CDK1 phosphorylation in triple-negative breast cancer expressing low-molecular weight cyclin E leads to suboptimal responses to chemotherapy but sensitizes tumors to PKMYT1 inhibitors, proposing a personalized treatment strategy.
Insights
Low-molecular weight cyclin E (LMW-E) in triple-negative breast cancer (TNBC) drives poor chemotherapy response. Targeting PKMYT1 with RP-6306 shows promise for LMW-E-positive TNBC, enhancing antitumor immunity.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Cyclin E isoforms regulate cell cycle progression, with low-molecular weight cyclin E (LMW-E) linked to poor prognosis in triple-negative breast cancer (TNBC).
- PKMYT1 kinase inhibits CDK1, playing a crucial role in mitosis and representing a potential therapeutic target in TNBC expressing LMW-E.
Purpose of the Study:
- To investigate the role of the LMW-E/PKMYT1/CDK1 axis in TNBC and evaluate the therapeutic potential of PKMYT1 inhibition.
- To determine if LMW-E expression predicts response to PKMYT1 inhibition.
Main Methods:
- Analysis of TNBC patient tumor samples for LMW-E and PKMYT1-catalyzed CDK1 phosphorylation.
- In vitro studies using TNBC cell lines treated with the PKMYT1 inhibitor RP-6306 (lunresertib).
- In vivo studies using TNBC xenografts and LMW-E transgenic murine models, alongside transcriptomic and immune profiling.
Main Results:
- Coexpression of LMW-E and PKMYT1-catalyzed CDK1 phosphorylation correlated with poor response to neoadjuvant chemotherapy.
- LMW-E specifically upregulates PKMYT1, increasing CDK1 phosphorylation.
- RP-6306 demonstrated LMW-E-dependent antitumor effects, including accelerated mitotic entry, enhanced DNA damage, and apoptosis.
- TNBC models expressing LMW-E showed increased sensitivity to RP-6306 compared to LMW-E-negative or FL-cycE models.
- RP-6306 treatment induced interferon responses and T-cell infiltration in LMW-E-high tumors.
Conclusions:
- The LMW-E/PKMYT1/CDK1 axis is a critical regulator in TNBC, influencing chemotherapy response.
- PKMYT1 inhibition with RP-6306 is a promising therapeutic strategy for LMW-E-positive TNBC.
- LMW-E expression serves as a predictive biomarker for response to PKMYT1 inhibitors, supporting personalized treatment approaches.
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