Yeast G1 DNA damage checkpoint regulation by H2A phosphorylation is independent of chromatin remodeling
- 12 September 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (37) , 13771-13776
- https://doi.org/10.1073/pnas.0511192103
Abstract
Recent studies of yeast G1 DNA damage response have identified characteristic changes in chromatin adjacent to double-strand breaks (DSBs). Histone H2A (yeast H2AX) is rapidly phosphorylated on S129 by the kinase Tel1 (ATM) over a domain extending kilobases from the DSB. The adaptor protein Rad9 (53BP1) is recruited to this chromatin domain through binding of its tudor domains to histone H3 diMe-K79. Multisite phosphorylation of Rad9 by Mec1 (ATR) then activates the signaling kinase Rad53 (CHK2) to induce a delay in G1. Here, we report a previously undescribed role for Tel1 in G1 checkpoint response and show that H2A is the likely phosphorylation target, in a much as S129 mutation to Ala confers defects in G1 checkpoint arrest, Rad9 phosphorylation, and Rad53 activation. Importantly, Rad9 fails to bind chromatin adjacent to DSBs in H2A-S129A mutants. Previous work showed that H2A phosphorylation allows binding of NuA4, SWR, and INO80 chromatin remodeling complexes, perhaps exposing H3 diMe-K79. Yet, mutants lacking SWR or INO80 remain checkpoint competent, whereas loss of NuA4-dependent histone acetylation leads to G1 checkpoint persistence, suggesting that H2A phosphorylation promotes two independent events, rapid Rad9 recruitment to DSBs and subsequent remodeling by NuA4, SWR, and INO80.Keywords
This publication has 52 references indexed in Scilit:
- Histone H2A phosphorylation and H3 methylation are required for a novel Rad9 DSB repair function following checkpoint activationDNA Repair, 2006
- Chromatin in Need of a Fix: Phosphorylation of H2AX Connects Chromatin to DNA RepairMolecular Cell, 2005
- DNA Damage Response Pathway Uses Histone Modification to Assemble a Double-Strand Break-Specific Cohesin DomainMolecular Cell, 2004
- Distribution and Dynamics of Chromatin Modification Induced by a Defined DNA Double-Strand BreakCurrent Biology, 2004
- Yeast Enhancer of Polycomb defines global Esa1-dependent acetylation of chromatinGenes & Development, 2003
- Opposite Role of Yeast ING Family Members in p53-dependent Transcriptional ActivationPublished by Elsevier ,2003
- NuA4 Subunit Yng2 Function in Intra-S-Phase DNA Damage ResponseMolecular and Cellular Biology, 2002
- Role of an ING1 Growth Regulator in Transcriptional Activation and Targeted Histone Acetylation by the NuA4 ComplexMolecular and Cellular Biology, 2001
- Budding Yeast Rad9 Is an ATP-Dependent Rad53 Activating MachinePublished by Elsevier ,2001
- Genetic Requirements for RAD51- andRAD54-Independent Break-Induced Replication Repair of a Chromosomal Double-Strand BreakMolecular and Cellular Biology, 2001