Lapatinib induces p27(Kip1)-dependent G 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.

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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