Requirement of ATM-Dependent Monoubiquitylation of Histone H2B for Timely Repair of DNA Double-Strand Breaks
The cellular response to DNA double-strand breaks (DSBs) is mobilized by the protein kinase ATM, which phosphorylates key players in the DNA damage response (DDR) network. A major question is how ATM controls DSB repair. Optimal repair requires chromatin relaxation at damaged sites. Chromatin reorga...
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Veröffentlicht in: | Molecular cell 2011-03, Vol.41 (5), p.529-542 |
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Sprache: | eng |
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Zusammenfassung: | The cellular response to DNA double-strand breaks (DSBs) is mobilized by the protein kinase ATM, which phosphorylates key players in the DNA damage response (DDR) network. A major question is how ATM controls DSB repair. Optimal repair requires chromatin relaxation at damaged sites. Chromatin reorganization is coupled to dynamic alterations in histone posttranslational modifications. Here, we show that in human cells, DSBs induce monoubiquitylation of histone H2B, a modification that is associated in undamaged cells with transcription elongation. We find that this process relies on recruitment to DSB sites and ATM-dependent phosphorylation of the responsible E3 ubiquitin ligase: the RNF20-RNF40 heterodimer. H2B monoubiquitylation is required for timely recruitment of players in the two major DSB repair pathways—nonhomologous end-joining and homologous recombination repair—and optimal repair via both pathways. Our data and previous data suggest a two-stage model for chromatin decondensation that facilitates DSB repair.
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► The ATM protein kinase facilitates double-strand break repair ► ATM signals monoubiquitylation of histone H2B at double-strand break sites ► The responsible ubiquitin ligase, the RNF20-RNF40 heterodimer, is an ATM target ► This pathway facilitates the recruitment of repair proteins and timely DSB repair |
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ISSN: | 1097-2765 1097-4164 |
DOI: | 10.1016/j.molcel.2011.02.015 |