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Differential impact of diverse anticancer chemotherapeutics on the Cdc25A-degradation checkpoint pathway
J Agner, J Falck, J Lukas, J Bartek
Language English Country United States
    PubMed
          
           15561098
           
          
          
  
    Knihovny.cz E-resources
    
  
              
      
- MeSH
- Enzyme Activation drug effects MeSH
- Cell Cycle MeSH
- Checkpoint Kinase 2 MeSH
- Cisplatin pharmacology MeSH
- Cyclin E metabolism MeSH
- DNA metabolism MeSH
- Doxorubicin pharmacology MeSH
- Etoposide pharmacology MeSH
- cdc25 Phosphatases * metabolism MeSH
- Antineoplastic Agents, Phytogenic pharmacology MeSH
- Topoisomerase I Inhibitors * MeSH
- Topoisomerase II Inhibitors * MeSH
- Radiation, Ionizing MeSH
- Camptothecin pharmacology MeSH
- Kinetics MeSH
- Humans MeSH
- Antibodies, Monoclonal metabolism MeSH
- Cell Line, Tumor MeSH
- Osteosarcoma MeSH
- Paclitaxel pharmacology MeSH
- DNA Damage drug effects radiation effects MeSH
- Protein Serine-Threonine Kinases metabolism MeSH
- Protein Kinases metabolism MeSH
- Antibiotics, Antineoplastic pharmacology MeSH
- Flow Cytometry MeSH
- Cell Line, Transformed MeSH
- Ultraviolet Rays MeSH
- Check Tag
- Humans MeSH
When exposed to DNA-damaging insults such as ionizing radiation (IR) or ultraviolet light (UV), mammalian cells activate checkpoint pathways to halt cell cycle progression or induce cell death. Here we examined the ability of five commonly used anticancer drugs with different mechanisms of action to activate the Chk1/Chk2-Cdc25A-CDK2/cyclin E cell cycle checkpoint pathway, previously shown to be induced by IR or UV. Whereas exposure of human cells to topoisomerase inhibitors camptothecin, etoposide, or adriamycin resulted in rapid (within 1 h) activation of the pathway including degradation of the Cdc25A phosphatase and inhibition of cyclin E/CDK2 kinase activity, taxol failed to activate this checkpoint even after a prolonged treatment. Unexpectedly, although the alkylating agent cisplatin also induced degradation of Cdc25A (albeit delayed, after 8-12 h), cyclin E/CDK2 activity was elevated and DNA synthesis continued, a phenomena that correlated with increased E2F1 protein levels and consequently enhanced expression of cyclin E. These results reveal a differential impact of various classes of anticancer chemotherapeutics on the Cdc25A-degradation pathway, and indicate that the kinetics of checkpoint induction, and the relative balance of key components within the DNA damage response network may dictate whether the treated cells arrest their cell cycle progression.
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- $a When exposed to DNA-damaging insults such as ionizing radiation (IR) or ultraviolet light (UV), mammalian cells activate checkpoint pathways to halt cell cycle progression or induce cell death. Here we examined the ability of five commonly used anticancer drugs with different mechanisms of action to activate the Chk1/Chk2-Cdc25A-CDK2/cyclin E cell cycle checkpoint pathway, previously shown to be induced by IR or UV. Whereas exposure of human cells to topoisomerase inhibitors camptothecin, etoposide, or adriamycin resulted in rapid (within 1 h) activation of the pathway including degradation of the Cdc25A phosphatase and inhibition of cyclin E/CDK2 kinase activity, taxol failed to activate this checkpoint even after a prolonged treatment. Unexpectedly, although the alkylating agent cisplatin also induced degradation of Cdc25A (albeit delayed, after 8-12 h), cyclin E/CDK2 activity was elevated and DNA synthesis continued, a phenomena that correlated with increased E2F1 protein levels and consequently enhanced expression of cyclin E. These results reveal a differential impact of various classes of anticancer chemotherapeutics on the Cdc25A-degradation pathway, and indicate that the kinetics of checkpoint induction, and the relative balance of key components within the DNA damage response network may dictate whether the treated cells arrest their cell cycle progression.
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