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Aven-dependent activation of ATM following DNA damage
Jessie Yanxiang Guo1, Ayumi Yamada, Taisuke Kajino
1Department of Pharmacology and Cancer Biology, Duke University Medical Center, Durham, North Carolina 27710, USA.
Background:
In response to DNA damage, cells undergo either cell-cycle arrest or apoptosis, depending on the extent of damage and the cell's capacity for DNA repair. Cell-cycle arrest induced by double-stranded DNA breaks depends on activation of the ataxia-telangiectasia (ATM) protein kinase, which phosphorylates cell-cycle effectors such as Chk2 and p53 to inhibit cell-cycle progression. ATM is recruited to double-stranded DNA breaks by a complex of sensor proteins, including Mre11/Rad50/Nbs1, resulting in autophosphorylation, monomerization, and activation of ATM kinase.
Results:
In characterizing Aven protein, a previously reported apoptotic inhibitor, we have found that Aven can function as an ATM activator to inhibit G2/M progression. Aven bound to ATM and Aven overexpressed in cycling Xenopus egg extracts prevented mitotic entry and induced phosphorylation of ATM and its substrates. Immunodepletion of endogenous Aven allowed mitotic entry even in the presence of damaged DNA, and RNAi-mediated knockdown of Aven in human cells prevented autophosphorylation of ATM at an activating site (S1981) in response to DNA damage. Interestingly, Aven is also a substrate of the ATM kinase. Mutation of ATM-mediated phosphorylation sites on Aven reduced its ability to activate ATM, suggesting that Aven activation of ATM after DNA damage is enhanced by ATM-mediated Aven phosphorylation.
Conclusions:
These results identify Aven as a new ATM activator and describe a positive feedback loop operating between Aven and ATM. In aggregate, these findings place Aven, a known apoptotic inhibitor, as a critical transducer of the DNA-damage signal.
Insights
Aven protein activates the ATM kinase, a key player in DNA damage response, and inhibits cell cycle progression. This creates a positive feedback loop, highlighting Aven
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- DNA damage triggers cell-cycle arrest or apoptosis.
- Ataxia-telangiectasia (ATM) kinase activation is crucial for cell-cycle arrest.
- ATM is recruited to DNA breaks by the Mre11/Rad50/Nbs1 complex, leading to its activation.
Purpose of the Study:
- To investigate the role of Aven protein in DNA damage response.
- To determine if Aven interacts with and modulates ATM kinase activity.
- To elucidate the mechanism of Aven's function in cell-cycle regulation.
Main Methods:
- Characterization of Aven protein function.
- Experiments using Xenopus egg extracts to study mitotic entry.
- Immunodepletion and RNA interference (RNAi) in human cells.
- Analysis of ATM autophosphorylation at S1981.
- Site-directed mutagenesis of Aven phosphorylation sites.
Main Results:
- Aven protein functions as an ATM activator, inhibiting G2/M progression.
- Aven binds to ATM and induces its phosphorylation in Xenopus egg extracts.
- Aven depletion or knockdown prevents ATM activation and mitotic entry after DNA damage.
- Aven is a substrate of ATM, and its phosphorylation enhances ATM activation, forming a positive feedback loop.
Conclusions:
- Aven is identified as a novel ATM activator.
- A positive feedback loop exists between Aven and ATM.
- Aven acts as a critical transducer of the DNA-damage signal, linking DNA repair to cell-cycle control.
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