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DNA replication stress-induced phosphorylation of cyclic AMP response element-binding protein mediated by ATM
Gerald E Dodson1, Randal S Tibbetts
1Department of Pharmacology, University of Wisconsin-Madison Medical School, Madison, Wisconsin 53706, USA.
Abstract:
The DNA damage-response regulators ATM (ataxia-telangiectasia-mutated) and ATR (ATM-Rad3-related) are structurally and functionally related protein kinases that exhibit nearly identical substrate specificities in vitro. Current paradigms hold that the relative contributions of ATM and ATR to nuclear substrate phosphorylation are dictated by the type of initiating DNA lesion; ATM-dependent substrate phosphorylation is principally activated by DNA double strand breaks, whereas ATR-dependent substrate phosphorylation is induced by UV light and other forms of DNA replication stress. In this report, we employed the cyclic AMP-response element-binding (CREB) protein to provide evidence for substrate discrimination by ATM and ATR in cellulo. ATM and ATR phosphorylate CREB in vitro, and CREB is phosphorylated on Ser-121 in intact cells in response to ionizing radiation (IR), UV light, and hydroxyurea. The UV light- and hydroxyurea-induced phosphorylation of CREB was delayed in comparison to the canonical ATR substrate CHK1, suggesting potentially different mechanisms of phosphorylation. UV light-induced CREB phosphorylation temporally correlated with ATM autophosphorylation on Ser-1981, and an ATM-specific small interfering RNA suppressed CREB phosphorylation in response to this stimulus. UV light-induced CREB phosphorylation was absent in ATM-deficient cells, confirming that ATM is required for CREB phosphorylation in UV irradiation-damaged cells. Interestingly, RNA interference-mediated suppression of ATR partially inhibited CREB phosphorylation in response to UV light, which correlated with reduced phosphorylation of ATM on Ser-1981. These findings suggest that ATM is the major genotoxin-induced CREB kinase in mammalian cells and that ATR lies upstream of ATM in a UV light-induced signaling pathway.
Insights
The study reveals ataxia-telangiectasia-mutated (ATM) kinase is the primary enzyme phosphorylating CREB in response to DNA damage, with ATM-Rad3-related (ATR) acting upstream in UV-induced signaling.
Area of Science:
- Molecular Biology
- Cellular Biology
- DNA Damage Response
Background:
- ATM and ATR are related protein kinases involved in DNA damage response.
- Their roles are typically distinguished by the type of DNA lesion: ATM for double-strand breaks, ATR for replication stress.
- Substrate discrimination between ATM and ATR in living cells remains incompletely understood.
Purpose of the Study:
- To investigate substrate discrimination between ATM and ATR in cellulo using the CREB protein.
- To elucidate the specific roles of ATM and ATR in CREB phosphorylation following various DNA-damaging treatments.
Main Methods:
- In vitro kinase assays with ATM, ATR, and CREB.
- Cellular studies using ionizing radiation (IR), UV light, and hydroxyurea treatments.
- Analysis of CREB phosphorylation at Ser-121.
- Utilized small interfering RNA (siRNA) for ATM and ATR suppression.
- Assessed ATM autophosphorylation at Ser-1981.
Main Results:
- ATM and ATR phosphorylate CREB in vitro; CREB is phosphorylated on Ser-121 in cells after IR, UV, and hydroxyurea exposure.
- UV and hydroxyurea-induced CREB phosphorylation were delayed compared to the ATR substrate CHK1.
- UV-induced CREB phosphorylation correlated with ATM autophosphorylation and was abolished in ATM-deficient cells.
- ATR suppression partially inhibited UV-induced CREB phosphorylation and ATM autophosphorylation.
Conclusions:
- ATM is the predominant kinase responsible for genotoxin-induced CREB phosphorylation in mammalian cells.
- ATR acts upstream of ATM in the signaling pathway activated by UV light, influencing ATM activity.
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