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Dual CDK4/CDK6 inhibition induces cell-cycle arrest and senescence in neuroblastoma
Julieann Rader1, Mike R Russell, Lori S Hart
1Authors' Affiliations: Division of Oncology and Center for Childhood Cancer Research; Division of Pathology, Children's Hospital of Philadelphia; Department of Pediatrics; Abramson Family Cancer Research Institute, Perelman School of Medicine at the University of Pennsylvania, Philadelphia, Pennsylvania; and Novartis Institutes for Biomedical Research, Cambridge, Massachusetts.
Purpose:
Neuroblastoma is a pediatric cancer that continues to exact significant morbidity and mortality. Recently, a number of cell-cycle proteins, particularly those within the Cyclin D/CDK4/CDK6/RB network, have been shown to exert oncogenic roles in neuroblastoma, suggesting that their therapeutic exploitation might improve patient outcomes.
Experimental Procedures:
We evaluated the effect of dual CDK4/CDK6 inhibition on neuroblastoma viability using LEE011 (Novartis Oncology), a highly specific CDK4/6 inhibitor.
Results:
Treatment with LEE011 significantly reduced proliferation in 12 of 17 human neuroblastoma-derived cell lines by inducing cytostasis at nanomolar concentrations (mean IC50 = 307 ± 68 nmol/L in sensitive lines). LEE011 caused cell-cycle arrest and cellular senescence that was attributed to dose-dependent decreases in phosphorylated RB and FOXM1, respectively. In addition, responsiveness of neuroblastoma xenografts to LEE011 translated to the in vivo setting in that there was a direct correlation of in vitro IC50 values with degree of subcutaneous xenograft growth delay. Although our data indicate that neuroblastomas sensitive to LEE011 were more likely to contain genomic amplification of MYCN (P = 0.01), the identification of additional clinically accessible biomarkers is of high importance.
Conclusions:
Taken together, our data show that LEE011 is active in a large subset of neuroblastoma cell line and xenograft models, and supports the clinical development of this CDK4/6 inhibitor as a therapy for patients with this disease. Clin Cancer Res; 19(22); 6173-82. ©2013 AACR.
Insights
CDK4/6 inhibitors like LEE011 show promise in treating neuroblastoma, a pediatric cancer. This drug effectively reduced cancer cell growth and halted cell cycles in preclinical models, supporting its clinical development.
Area of Science:
- Pediatric Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Neuroblastoma is a significant pediatric cancer with high mortality.
- The Cyclin D/CDK4/CDK6/RB network plays a critical role in neuroblastoma oncogenesis.
- Targeting this network offers a potential therapeutic strategy.
Purpose of the Study:
- To evaluate the efficacy of dual CDK4/CDK6 inhibition in neuroblastoma.
- To assess the impact of LEE011 on neuroblastoma cell viability and proliferation.
- To explore potential biomarkers for treatment response.
Main Methods:
- Utilized LEE011, a specific CDK4/6 inhibitor, against neuroblastoma cell lines.
- Assessed cell viability, proliferation, and cell-cycle progression.
- Evaluated LEE011 efficacy in neuroblastoma xenograft models.
- Correlated in vitro sensitivity with in vivo responses and MYCN amplification.
Main Results:
- LEE011 significantly reduced proliferation in 12 out of 17 neuroblastoma cell lines at nanomolar concentrations.
- The drug induced cytostasis, cell-cycle arrest, and cellular senescence.
- In vivo xenograft studies demonstrated a correlation between in vitro sensitivity and tumor growth delay.
- MYCN amplification was associated with sensitivity to LEE011.
Conclusions:
- LEE011 demonstrates significant activity in a substantial subset of neuroblastoma models.
- The findings support the further clinical development of LEE011 for neuroblastoma treatment.
- Identification of additional biomarkers is crucial for optimizing patient selection.
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