Cell Reports · 2015 · 104 citations · 43 references
Molecular RegulationMolecular BiologyDsb RepairEpigeneticsDsbs FormTranscriptional RegulationCell RegulationProtein DegradationBiophysicsMolecular SignalingGenome InstabilityProtein Quality ControlEpigenetic RegulationCell BiologyChromatin FunctionChromatinChromatin StructureChromatin RemodelingNatural SciencesH2ax StabilizationMedicineDsb Formation
In response to DNA double-strand breaks (DSBs), H2AX is rapidly phosphorylated at Ser139 to promote DSB repair. Here we show that H2AX is rapidly stabilized in response to DSBs to efficiently generate γH2AX foci. This mechanism operated even in quiescent cells that barely expressed H2AX. H2AX stabilization resulted from the inhibition of proteasome-mediated degradation. Synthesized H2AX ordinarily underwent degradation through poly-ubiquitination mediated by the E3 ligase HUWE1; however, H2AX ubiquitination was transiently halted upon DSB formation. Such rapid H2AX stabilization by DSBs was associated with chromatin incorporation of H2AX and halting of its poly-ubiquitination mediated by the ATM kinase, the sirtuin protein SIRT6, and the chromatin remodeler SNF2H. H2AX Ser139, the ATM phosphorylation site, was essential for H2AX stabilization upon DSB formation. Our results reveal a pathway controlled by ATM, SIRT6, and SNF2H to block HUWE1, which stabilizes H2AX and induces its incorporation into chromatin only when cells are damaged.
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Megabase Chromatin Domains Involved in DNA Double-Strand Breaks in Vivo
Emmy P. Rogakou, Chye Boon, Christophe E. Redon et al. · The Journal of Cell Biology · 1999 · 2.4K citations · Full text