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Killing the second messenger: targeting loss of cell cycle control in endocrine-resistant breast cancer
1Departments of Medicine and Pharmacology, Masonic Cancer Center, University of Minnesota, 420 Delaware Street South East, MMC 806, Minneapolis, Minnesota 55455, USA. lange047@umn.edu
Abstract:
The majority (∼70%) of breast cancers are steroid hormone receptor (SR) positive at the time of diagnosis. Endocrine therapies that target estrogen receptor α (ERα) action (tamoxifen, toremifene, fulvestrant) or estrogen synthesis (aromatase inhibitors: letrozole, anastrozole, exemestane; or ovarian suppression) are a clinical mainstay. However, up to 50% of SR+ breast cancers exhibit de novo or acquired resistance to these clinical interventions. Mechanisms of resistance to endocrine therapies often include upregulation and/or activation of signal transduction pathways that input to cell cycle regulation. Cyclin D1, the regulatory subunit of cyclin-dependent protein kinases four and six (CDK4/6) serves as a convergence point for multiple signaling pathways. In a recent paper entitled 'Therapeutically Activating Retinoblastoma (RB): Reestablishing Cell Cycle Control in Endocrine Therapy-Resistant Breast Cancer', Thangavel et al. reported maintenance of cyclin D1 expression and RB phosphorylation in the face of ER ablation in multiple breast cancer cell line models of endocrine resistance. RB-dysfunction defined a unique gene signature that was associated with luminal B-type breast cancer and predictive of poor response to endocrine therapies. Notably, a new CDK4/6 inhibitor (PD-0332991) was capable of inducing growth arrest by a mechanism that was most consistent with cellular senescence. In this review, these findings are discussed in the context of SRs as important mediators of cell cycle progression, and the frequent loss of cell cycle checkpoint control that typifies breast cancer progression. These studies provide renewed hope of effectively stabilizing endocrine-resistant breast cancers using available complementary (to endocrine-based therapies) cytostatic agents in the form of CDK4/6 inhibitors.
Insights
Steroid hormone receptor-positive breast cancers often develop resistance to endocrine therapies. Targeting cyclin-dependent kinases 4/6 (CDK4/6) with inhibitors may re-establish cell cycle control and offer new treatment options.
Area of Science:
- Oncology
- Molecular Biology
- Cell Cycle Regulation
Background:
- Steroid hormone receptor (SR)-positive breast cancers constitute the majority of diagnoses.
- Endocrine therapies targeting estrogen receptor alpha (ERα) or estrogen synthesis are standard treatments.
- Resistance to endocrine therapies affects up to 50% of SR-positive breast cancers, often involving cell cycle dysregulation.
Purpose of the Study:
- To review mechanisms of endocrine resistance in breast cancer.
- To discuss the role of cyclin D1 and Retinoblastoma (RB) protein in cell cycle control.
- To explore the potential of CDK4/6 inhibitors in overcoming endocrine resistance.
Main Methods:
- Analysis of cell line models of endocrine resistance.
- Identification of gene signatures associated with RB dysfunction.
- Review of studies on CDK4/6 inhibitors, such as PD-0332991.
Main Results:
- Endocrine-resistant breast cancer models maintain cyclin D1 expression and RB phosphorylation.
- RB dysfunction is linked to luminal B-type breast cancer and poor endocrine therapy response.
- CDK4/6 inhibition can induce growth arrest, potentially through cellular senescence.
Conclusions:
- SRs are key mediators of cell cycle progression in breast cancer.
- Loss of cell cycle checkpoint control is common in breast cancer progression.
- CDK4/6 inhibitors represent a promising complementary strategy to endocrine therapy for resistant breast cancers.
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