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Published on: May 14, 2016
Gemcitabine-induced activation of checkpoint signaling pathways that affect tumor cell survival
Larry M Karnitz1, Karen S Flatten, Jill M Wagner
1Division of Oncology Research, Guggenheim 13, Mayo Clinic College of Medicine, 200 First Street, S.W., Rochester, Minnesota 55905, USA. Karnitz.Larry@Mayo.edu
Abstract:
Two signaling pathways are activated by antineoplastic therapies that damage DNA and stall replication. In one pathway, double-strand breaks activate ataxia-telangiectasia mutated kinase (ATM) and checkpoint kinase 2 (Chk2), two protein kinases that regulate apoptosis, cell-cycle arrest, and DNA repair. In the second pathway, other types of DNA lesions and replication stress activate the Rad9-Hus1-Rad1 complex and the protein kinases ataxia-telangiectasia mutated and Rad3-related kinase (ATR) and checkpoint kinase 1 (Chk1), leading to changes that block cell-cycle progression, stabilize stalled replication forks, and influence DNA repair. Gemcitabine and cytarabine are two highly active chemotherapeutic agents that disrupt DNA replication. Here, we examine the roles these pathways play in tumor cell survival after treatment with these agents. Cells lacking Rad9, Chk1, or ATR were more sensitive to gemcitabine and cytarabine, consistent with the fact that these agents stall replication forks, and this sensitization was independent of p53 status. Interestingly, ATM depletion sensitized cells to gemcitabine and ionizing radiation but not cytarabine. Together, these results demonstrate that 1) gemcitabine triggers both checkpoint signaling pathways, 2) both pathways contribute to cell survival after gemcitabine-induced replication stress, and 3) although gemcitabine and cytarabine both stall replication forks, ATM plays differential roles in cell survival after treatment with these agents.
Insights
Gemcitabine and cytarabine activate DNA damage response pathways. Both pathways are crucial for tumor cell survival after gemcitabine treatment, with ATM playing a differential role depending on the agent.
Area of Science:
- Molecular Biology
- Cancer Biology
- Cell Signaling
Background:
- DNA-damaging antineoplastic therapies activate distinct signaling pathways.
- These pathways involve kinases like ATM, ATR, Chk1, and Chk2, and complexes such as Rad9-Hus1-Rad1.
- Gemcitabine and cytarabine are chemotherapeutics that disrupt DNA replication.
Purpose of the Study:
- To investigate the roles of DNA damage signaling pathways in tumor cell survival following gemcitabine and cytarabine treatment.
- To determine how ATM, ATR, Chk1, and Rad9 contribute to cellular responses to these chemotherapeutic agents.
Main Methods:
- Utilized cell lines deficient in key DNA damage response proteins (Rad9, Chk1, ATR, ATM).
- Assessed sensitivity to gemcitabine and cytarabine in these deficient cell lines.
- Evaluated the impact of ATM depletion on sensitivity to gemcitabine, cytarabine, and ionizing radiation.
Main Results:
- Cells lacking Rad9, Chk1, or ATR exhibited increased sensitivity to both gemcitabine and cytarabine, independent of p53.
- ATM depletion sensitized cells to gemcitabine and ionizing radiation, but not to cytarabine.
- Gemcitabine treatment activated both ATM/Chk2 and ATR/Chk1 signaling pathways.
Conclusions:
- Gemcitabine triggers both major DNA damage checkpoint signaling pathways.
- Both pathways are essential for tumor cell survival after gemcitabine-induced replication stress.
- ATM plays a differential role in cell survival depending on whether cells are treated with gemcitabine or cytarabine, despite both agents stalling replication forks.
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