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Cell cycle regulatory protein expression in fresh acute myeloid leukemia cells and after drug exposure

N Radosevic1, A Delmer, R Tang

  • 1Hematology Department, INSERM E9912/EA1529, Hotel-Dieu, Paris, France.

Leukemia
|May 23, 2001
PubMed

Insights

High p27 expression predicts chemotherapy response in acute myeloid leukemia (AML). Cdk2 activity and cell cycle regulators characterize drug response, with high-dose AraC inducing p21 and apoptosis in AML cells.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Biology

Background:

  • Treatment-induced cell cycle arrest is crucial for acute myeloid leukemia (AML) sensitivity to cytotoxic drugs.
  • Understanding cell cycle regulator expression in AML is key to predicting treatment outcomes.

Purpose of the Study:

  • To analyze the expression of G1 cell cycle regulators in AML cells.
  • To correlate these expressions with chemotherapy response.
  • To investigate the role of cell cycle regulators and cdk2 activity in response to cytosine-arabinoside (AraC) and daunorubicin (DNR).

Main Methods:

  • Analysis of p21Cip1, p27Kip1, cyclins D, cyclin E, and pRb expression in 41 AML samples.
  • Assessment of pRb, cyclin E, p21, p27 expression, and cdk2 activity after drug exposure.
  • Correlation of protein expression with FAB subtype and treatment response.

Main Results:

  • High p27 expression was the sole predictor of complete remission in AML.
  • pRb and cyclin D2 expression correlated with FAB subtype, notably absent in monocytic components (M4, M5).
  • AraC exposure modulated pRb, cyclin E, p21, and cdk2 activity in a dose-dependent manner, with high-dose AraC significantly increasing p21 induction, cyclin E, cdk2 activity, and apoptosis.

Conclusions:

  • p27 expression is a significant predictive biomarker for AML chemotherapy response.
  • Cdk2 activity and cell cycle regulators characterize the time- and dose-dependent cellular response to AraC and DNR.
  • The observed mechanism involving p21 induction and enhanced cdk2 activity in high-dose AraC regimens may explain its efficacy in AML cells resistant to conventional doses.

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