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Published on: July 25, 2020
Targeting PFKFB3 to enhance CDK4/6 inhibitor response in ER+ breast cancer
Sucheta Telang1, Brian F Clem1, Ariamna A Herrera Miret2
1University of Louisville.
Background:
Cyclin-dependent kinase 4 and 6 (CDK4/6) inhibitors are widely used in the treatment of estrogen receptor-positive (ER+) breast cancer; however, the metabolic adaptations induced by CDK4/6 inhibition remain incompletely defined. In ER+ breast cancer, estrogen signaling plays a central role in coordinating cell cycle progression and metabolic programs that support tumor growth. Glycolytic flux is regulated at the level of phosphofructokinase-1 (PFK1) through the inducible enzyme 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase 3 (PFKFB3), which is transcriptionally regulated by estrogen receptor signaling and has been shown to promote glycolysis and proliferation in ER+ breast cancer cells. Yet, how CDK4/6 inhibition intersects with estrogen-regulated glycolytic control to rewire glucose utilization in ER+ breast cancer has not been explored.
Methods:
Glucose metabolism was assessed using extracellular flux analysis, untargeted metabolomics, and stable isotope tracing with uniformly labeled 13C-glucose in ER + breast cancer cell lines. In vivo metabolic tracing was performed following bolus administration of [U-13C]-glucose. The effects of pharmacologic PFKFB3 inhibition, alone and in combination with CDK4/6 inhibitors, were evaluated in vitro and in patient-derived xenograft (PDX) models. Statistical analyses were performed using appropriate tests with correction for multiple comparisons where applicable.
Results:
CDK4/6 inhibition increased glycolytic flux, as evidenced by elevated basal and compensatory glycolysis, accumulation of early glycolytic intermediates, and increased 13C labeling of fructose 1,6-bisphosphate. PFKFB3 silencing abrogated the CDK4/6 inhibitor-induced increase in glycolytic flux. Despite increased glycolysis, stable isotope tracing revealed markedly reduced incorporation of glucose-derived carbon into nucleotide biosynthesis and lipid-associated metabolites, consistent with reduced anabolic demand during G1 cell cycle arrest. In vivo glucose tracing demonstrated a dissociation between increased glycolytic flux and downstream biosynthetic utilization. Pharmacologic inhibition of PFKFB3 imposed additional constrains on glucose utilization and significantly enhanced the antitumor efficacy of CDK4/6 inhibition in PDX models.
Conclusions:
CDK4/6 inhibition rewires glucose metabolism in ER + breast cancer by increasing glycolytic flux while limiting downstream glucose utilization, resulting in heightened reliance on regulated glycolytic control to maintain metabolic homeostasis during cell cycle arrest. Disruption of this adaptive metabolic state through PFKFB3 inhibition enhances the antitumor effects of CDK4/6 inhibition and supports the therapeutic potential of targeting glycolytic regulation in combination with CDK4/6 inhibitor-directed therapies.
Insights
Cyclin-dependent kinase 4 and 6 (CDK4/6) inhibitors increase glycolysis in ER-positive breast cancer. Combining CDK4/6 inhibitors with PFKFB3 inhibition enhances anti-tumor effects by disrupting metabolic adaptations.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer cell biology
Background:
- Estrogen receptor-positive (ER⁺) breast cancer treatment commonly uses cyclin-dependent kinase 4 and 6 (CDK4/6) inhibitors.
- Metabolic adaptations to CDK4/6 inhibition are not fully understood.
- Estrogen signaling regulates cell cycle and metabolism in ER⁺ breast cancer, influencing glycolytic flux via phosphofructokinase-1 (PFK1) and 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase 3 (PFKFB3).
Purpose of the Study:
- To investigate how CDK4/6 inhibition affects glucose metabolism in ER⁺ breast cancer.
- To explore the role of PFKFB3 in mediating metabolic adaptations during CDK4/6 inhibition.
- To evaluate the therapeutic potential of combining PFKFB3 inhibition with CDK4/6 inhibitors.
Main Methods:
- Extracellular flux analysis, untargeted metabolomics, and 13C-glucose stable isotope tracing in ER⁺ breast cancer cell lines.
- In vivo metabolic tracing using 13C-glucose in animal models.
- Assessment of pharmacologic PFKFB3 inhibition combined with CDK4/6 inhibitors in vitro and in patient-derived xenograft (PDX) models.
Main Results:
- CDK4/6 inhibition increased glycolytic flux, indicated by elevated glycolysis and accumulation of early glycolytic intermediates.
- PFKFB3 silencing prevented the increase in glycolytic flux caused by CDK4/6 inhibitors.
- Despite increased glycolysis, glucose incorporation into nucleotides and lipids was reduced, suggesting suppressed anabolism during cell cycle arrest.
- Combined PFKFB3 and CDK4/6 inhibition significantly enhanced anti-tumor efficacy in PDX models.
Conclusions:
- CDK4/6 inhibition alters glucose metabolism in ER⁺ breast cancer by increasing glycolysis while limiting downstream utilization.
- This metabolic rewiring creates a reliance on regulated glycolytic control for homeostasis during cell cycle arrest.
- Targeting PFKFB3 alongside CDK4/6 inhibitors can disrupt this adaptive state, enhancing anti-tumor effects and offering a potential therapeutic strategy.
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