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S phase and G2 arrests induced by topoisomerase I poisons are dependent on ATR kinase function
William A Cliby1, Kriste A Lewis, Kia K Lilly
1Department of Obstetrics and Gynecology, Mayo Clinic, Rochester, Minnesota 55905, USA. cliby.william@mayo.edu
Abstract:
ATR, a human phosphatidylinositol 3-kinase-related kinase, is an important component of the cellular response to DNA damage. In the present study, we evaluated the role of ATR in modulating the response of cells to S phase-associated DNA double-stranded breaks induced by topoisomerase poisons. Prolonged exposure to low doses of the topoisomerase I poison topotecan (TPT) resulted in S phase slowing because of diminished DNA synthesis at late-firing replicons. In contrast, brief TPT exposure, as well as prolonged exposure to the topoisomerase II poison etoposide, resulted in subsequent G(2) arrest. These responses were associated with phosphorylation of the checkpoint kinase Chk1. The cell cycle responses and phosphorylation of Chk1 were markedly diminished by forced overexpression of a dominant negative, kinase-inactive allele of ATR. In contrast, deficiency of the related kinase ATM had no effect on these events. The loss of ATR-dependent checkpoint function sensitized GM847 human fibroblasts to the cytotoxic effects of the topoisomerase I poisons TPT and 7-ethyl-10-hydroxycamptothecin, as assessed by inhibition of colony formation, increased trypan blue uptake, and development of apoptotic morphological changes. Expression of kdATR also sensitized GM847 cells to the cytotoxic effects of prolonged low dose etoposide and doxorubicin, albeit to a smaller extent. Collectively, these results not only suggest that ATR is important in responding to the replication-associated DNA damage from topoisomerase poisons, but also support the view that ATM and ATR have unique roles in activating the downstream kinases that participate in cell cycle checkpoints.
Insights
The ATR kinase is crucial for cellular DNA damage response, particularly to topoisomerase poisons. Loss of ATR function sensitizes cells to DNA damage, highlighting its role in cell cycle checkpoints.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- ATR is a key phosphatidylinositol 3-kinase-related kinase involved in DNA damage response.
- Topoisomerase poisons induce DNA double-stranded breaks during S phase, challenging cellular integrity.
Purpose of the Study:
- To investigate the role of ATR in cellular responses to S phase DNA damage induced by topoisomerase poisons.
- To elucidate the distinct roles of ATR and ATM in activating cell cycle checkpoints.
Main Methods:
- Overexpression of a dominant-negative ATR allele to inhibit ATR function.
- Treatment of human fibroblasts with topoisomerase I (topotecan) and topoisomerase II (etoposide) poisons.
- Assessment of cell cycle progression (S phase slowing, G2 arrest), Chk1 phosphorylation, and cytotoxicity (colony formation, trypan blue uptake, apoptosis).
Main Results:
- Prolonged low-dose topotecan caused S phase slowing, while brief topotecan or etoposide induced G2 arrest, both linked to Chk1 phosphorylation.
- Inhibition of ATR markedly reduced these cell cycle responses and Chk1 phosphorylation.
- ATR deficiency sensitized cells to topoisomerase poisons, increasing cytotoxicity and apoptosis.
- ATM deficiency did not affect these ATR-dependent responses.
Conclusions:
- ATR plays a critical role in managing replication-associated DNA damage caused by topoisomerase poisons.
- ATR is essential for activating downstream kinases involved in cell cycle checkpoints following DNA damage.
- ATM and ATR kinases have distinct functions in DNA damage response pathways.