Lapatinib induces p27(Kip1)-dependent G₁ arrest through both transcriptional and post-translational mechanisms
Lin Tang1, Yucai Wang, Anders Strom
1Department of Medical Oncology, Jinling Hospital; Nanjing University School of Medicine, Nanjing, PR China.
Abstract:
Lapatinib, a dual EGFR/HER2 tyrosine kinase inhibitor, has been shown to have potent antitumor effects against human breast cancer. Recent studies have shown that lapatinib upregulates p27(Kip1) (here after referred to as p27) expression and induces G₁ cell cycle arrest in various types of cancer cells. However, the regulation of p27 in lapatinib-induced cell cycle arrest is not well studied. Here we demonstrate that lapatinib-induced cell growth inhibition and G₁ cell cycle arrest in HER2-overexpressing human breast cancer cells were dependent on p27. We also show that lapatinib-induced upregulation of p27 expression was mediated through both transcriptional and post-translational mechanisms. On the one hand, lapatinib treatment led to increased FOXO3a expression and enhanced p27 transcription. On the other hand, lapatinib treatment resulted in increased DYRK1B expression, which correlated with increased p27 phosphorylation at Ser10 and decreased p27 degradation. Interestingly, we found that ERβ1 but not ERβ2 expression also upregulated p27 and enhanced lapatinib-induced cell proliferation inhibition and G₁ cell cycle arrest in HER2-overexpressing breast cancer cells. Taken together, our results suggest that lapatinib induces p27 expression via both transcriptional and post-translational upregulations, leading to cell cycle arrest and cell proliferation inhibition, and that its effect on breast cancer cells may be modified by ER expression status.
Insights
Lapatinib drug upregulates p27 expression through multiple pathways, causing cell cycle arrest in breast cancer. Estrogen receptor beta 1 (ERβ1) can enhance this anti-cancer effect.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Lapatinib is a dual EGFR/HER2 tyrosine kinase inhibitor with antitumor effects.
- Lapatinib upregulates p27(Kip1) (p27) and induces G₁ cell cycle arrest.
- Mechanisms regulating p27 in lapatinib-induced cell cycle arrest require further study.
Purpose of the Study:
- To investigate the role of p27 in lapatinib-induced cell cycle arrest.
- To elucidate the transcriptional and post-translational mechanisms of p27 upregulation by lapatinib.
- To examine the influence of Estrogen Receptor beta (ERβ) expression on lapatinib's effects.
Main Methods:
- Studied lapatinib's effects on HER2-overexpressing human breast cancer cells.
- Analyzed p27 expression, cell cycle progression, and protein degradation pathways.
- Investigated the roles of FOXO3a, DYRK1B, ERβ1, and ERβ2 in lapatinib response.
Main Results:
- Lapatinib-induced growth inhibition and G₁ arrest were p27-dependent.
- Lapatinib increased p27 transcription via FOXO3a and decreased p27 degradation via DYRK1B.
- ERβ1, but not ERβ2, enhanced lapatinib's anti-proliferative and cell cycle arrest effects.
Conclusions:
- Lapatinib induces p27 expression through both transcriptional and post-translational mechanisms, leading to cell cycle arrest.
- ER expression status may modify the efficacy of lapatinib in breast cancer treatment.
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