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Chromatin relaxation in response to DNA double-strand breaks is modulated by a novel ATM- and KAP-1 dependent pathway
Y Ziv, D Bielopolski, Y Galanty, C Lukas, Y Taya, DC Schultz, J Lukas, S Bekker-Jensen, J Bartek, Y Shiloh
Jazyk angličtina Země Anglie, Velká Británie
NLK
ProQuest Central
od 2000-01-01 do Před 1 rokem
Medline Complete (EBSCOhost)
od 1999-05-01 do 2015-11-30
Health & Medicine (ProQuest)
od 2000-01-01 do Před 1 rokem
PubMed
16862143
Knihovny.cz E-zdroje
- MeSH
- ATM protein MeSH
- buněčné linie MeSH
- chromatin * metabolismus MeSH
- DNA vazebné proteiny fyziologie genetika metabolismus MeSH
- fluorescenční mikroskopie MeSH
- fosforylace MeSH
- inhibitory syntézy nukleových kyselin MeSH
- lidé MeSH
- mutace MeSH
- nádorové buněčné linie MeSH
- nádorové supresorové proteiny fyziologie genetika metabolismus MeSH
- poškození DNA * MeSH
- protein-serin-threoninkinasy fyziologie genetika metabolismus MeSH
- proteiny buněčného cyklu fyziologie genetika metabolismus MeSH
- represorové proteiny fyziologie genetika metabolismus MeSH
- signální transdukce * fyziologie MeSH
- viabilita buněk genetika účinky léků MeSH
- vztah mezi dávkou a účinkem léčiva MeSH
- western blotting MeSH
- zinostatin farmakologie MeSH
- Check Tag
- lidé MeSH
The cellular DNA-damage response is a signaling network that is vigorously activated by cytotoxic DNA lesions, such as double-strand breaks (DSBs). The DSB response is mobilized by the nuclear protein kinase ATM, which modulates this process by phosphorylating key players in these pathways. A long-standing question in this field is whether DSB formation affects chromatin condensation. Here, we show that DSB formation is followed by ATM-dependent chromatin relaxation. ATM's effector in this pathway is the protein KRAB-associated protein (KAP-1, also known as TIF1beta, KRIP-1 or TRIM28), previously known as a corepressor of gene transcription. In response to DSB induction, KAP-1 is phosphorylated in an ATM-dependent manner on Ser 824. KAP-1 is phosphorylated exclusively at the damage sites, from which phosphorylated KAP-1 spreads rapidly throughout the chromatin. Ablation of the phosphorylation site of KAP-1 leads to loss of DSB-induced chromatin decondensation and renders the cells hypersensitive to DSB-inducing agents. Knocking down KAP-1, or mimicking a constitutive phosphorylation of this protein, leads to constitutive chromatin relaxation. These results suggest that chromatin relaxation is a fundamental pathway in the DNA-damage response and identify its primary mediators.
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- $a Ziv, Y. $u The David and Inez Myers Laboratory for Genetic Research, Department of Molecular Genetics and Biochemistry, Sackler School of Medicine, Tel Aviv University, Tel Aviv 69978, Israel. yaelz@post.tau.ac.il
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- $a The cellular DNA-damage response is a signaling network that is vigorously activated by cytotoxic DNA lesions, such as double-strand breaks (DSBs). The DSB response is mobilized by the nuclear protein kinase ATM, which modulates this process by phosphorylating key players in these pathways. A long-standing question in this field is whether DSB formation affects chromatin condensation. Here, we show that DSB formation is followed by ATM-dependent chromatin relaxation. ATM's effector in this pathway is the protein KRAB-associated protein (KAP-1, also known as TIF1beta, KRIP-1 or TRIM28), previously known as a corepressor of gene transcription. In response to DSB induction, KAP-1 is phosphorylated in an ATM-dependent manner on Ser 824. KAP-1 is phosphorylated exclusively at the damage sites, from which phosphorylated KAP-1 spreads rapidly throughout the chromatin. Ablation of the phosphorylation site of KAP-1 leads to loss of DSB-induced chromatin decondensation and renders the cells hypersensitive to DSB-inducing agents. Knocking down KAP-1, or mimicking a constitutive phosphorylation of this protein, leads to constitutive chromatin relaxation. These results suggest that chromatin relaxation is a fundamental pathway in the DNA-damage response and identify its primary mediators.
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