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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.
Abstract:
Characteristics of treatment-induced cell cycle arrest are important for in vitro and in vivo sensitivity of acute myeloid leukemia (AML) cells to cytotoxic drugs. We analyzed the expression of the major G1 cell cycle regulators (p21Cip1, p27Kip1, cyclins D, cyclin E and pRb) in 41 fresh AML cell samples. The level of p27 expression was the only factor correlated with the response to chemotherapy, a high level of p27 expression being predictive of complete remission. There was a close relation between expression of pRb, cyclin D2 and FAB subtype, illustrated by the absence of both proteins in most samples having a monocytic component (M4, M5). We also assessed the expressions of pRb, cyclin E, p21 and p27 and the activity of cdk2, the major regulator of S-phase entry, after exposure to cytosine-arabinoside (AraC) and daunorubicin (DNR), and found these proteins could characterize time- and dose-dependent cellular response to each drug. We observed hyperphosphorylated pRb, increased levels of cyclin E and a high cdk2 activity, but no p21 induction, in AML cells exposed to 10(-6) M AraC. After exposure to 10(-5) M AraC, corresponding to the serum concentration reached in high-dose AraC regimens (HDAraC), a strong p21 induction was observed, associated with similarly overexpressed cyclin E and even higher cdk2 activity than after 10(-6) M AraC, while apoptosis was significantly increased. These data suggest that cdk2 activity is likely to play a role in AraC-induced apoptosis in AML cells. This mechanism may account for high efficacy of HDAraC in cells showing little sensitivity to conventional AraC doses.
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.