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Distinct functional domains of Nbs1 modulate the timing and magnitude of ATM activation after low doses of ionizing radiation
Z Horejsi, J Falck, CJ Bakkenist, MB Kastan, J Lukas, J Bartek
Jazyk angličtina Země Anglie, Velká Británie
NLK
Free Medical Journals
od 1997 do 2004
ProQuest Central
od 2000-01-01 do Před 1 rokem
Open Access Digital Library
od 1997-01-01
Medline Complete (EBSCOhost)
od 1997-01-09 do 2015-11-26
Health & Medicine (ProQuest)
od 2000-01-01 do Před 1 rokem
Public Health Database (ProQuest)
od 2000-01-01 do Před 1 rokem
PubMed
15048089
Knihovny.cz E-zdroje
- MeSH
- amplifikace genu MeSH
- ATM protein MeSH
- DNA vazebné proteiny MeSH
- fosforylace MeSH
- fosfoserin metabolismus MeSH
- ionizující záření MeSH
- jaderné proteiny chemie metabolismus nedostatek MeSH
- kinetika MeSH
- lidé MeSH
- nádorové supresorové proteiny MeSH
- nádory genetika prevence a kontrola MeSH
- poškození DNA genetika MeSH
- protein-serin-threoninkinasy * metabolismus účinky záření MeSH
- proteiny buněčného cyklu chemie metabolismus MeSH
- teleangiektatická ataxie MeSH
- vazebná místa MeSH
- viabilita buněk MeSH
- Check Tag
- lidé MeSH
The ATM kinase is a tumour suppressor and a key activator of genome integrity checkpoints in mammalian cells exposed to ionizing radiation (IR) and other insults that elicit DNA double-strand breaks (DSBs). In response to IR, autophosphorylation on serine 1981 causes dissociation of ATM dimers and initiates cellular ATM kinase activity. Here, we show that the kinetics and magnitude of ATM Ser1981 phosphorylation after exposure of human fibroblasts to low doses (2 Gy) of IR are altered in cells deficient in Nbs1, a substrate of ATM and a component of the MRN (Mre11-Rad50-Nbs1) complex involved in processing/repair of DSBs and ATM-dependent cell cycle checkpoints. Timely phosphorylation of both ATM Ser1981 and the ATM substrate Smc1 after IR were rescued via retrovirally mediated reconstitution of Nbs1-deficient cells by wild-type Nbs1 or mutants of Nbs1 defective in the FHA domain or nonphosphorylatable by ATM, but not by Nbs1 lacking the Mre11-interaction domain. Our data indicate that apart from its role downstream of ATM in the DNA damage checkpoint network, the MRN complex serves also as a modulator/amplifier of ATM activity. Although not absolutely required for ATM activation, the MRN nuclease complex may help reach the threshold activity of ATM necessary for optimal genome maintenance and prevention of cancer.
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- $a Hořejší, Zuzana $7 xx0122010 $u Danish Cancer Society, Institute of Cancer Biology, Strandboulevarden 49, Copenhagen DK-2100 Denmark.
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- $a Distinct functional domains of Nbs1 modulate the timing and magnitude of ATM activation after low doses of ionizing radiation / $c Z Horejsi, J Falck, CJ Bakkenist, MB Kastan, J Lukas, J Bartek
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- $a The ATM kinase is a tumour suppressor and a key activator of genome integrity checkpoints in mammalian cells exposed to ionizing radiation (IR) and other insults that elicit DNA double-strand breaks (DSBs). In response to IR, autophosphorylation on serine 1981 causes dissociation of ATM dimers and initiates cellular ATM kinase activity. Here, we show that the kinetics and magnitude of ATM Ser1981 phosphorylation after exposure of human fibroblasts to low doses (2 Gy) of IR are altered in cells deficient in Nbs1, a substrate of ATM and a component of the MRN (Mre11-Rad50-Nbs1) complex involved in processing/repair of DSBs and ATM-dependent cell cycle checkpoints. Timely phosphorylation of both ATM Ser1981 and the ATM substrate Smc1 after IR were rescued via retrovirally mediated reconstitution of Nbs1-deficient cells by wild-type Nbs1 or mutants of Nbs1 defective in the FHA domain or nonphosphorylatable by ATM, but not by Nbs1 lacking the Mre11-interaction domain. Our data indicate that apart from its role downstream of ATM in the DNA damage checkpoint network, the MRN complex serves also as a modulator/amplifier of ATM activity. Although not absolutely required for ATM activation, the MRN nuclease complex may help reach the threshold activity of ATM necessary for optimal genome maintenance and prevention of cancer.
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