A phosphatase complex that dephosphorylates γH2AX regulates DNA damage checkpoint recovery
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- 20 November 2005
- journal article
- research article
- Published by Springer Nature in Nature
- Vol. 439 (7075) , 497-501
- https://doi.org/10.1038/nature04384
Abstract
One of the earliest marks of a double-strand break (DSB) in eukaryotes is serine phosphorylation of the histone variant H2AX at the carboxy-terminal SQE motif to create γH2AX-containing nucleosomes1. Budding-yeast histone H2A is phosphorylated in a similar manner by the checkpoint kinases Tel1 and Mec1 (ref. 2; orthologous to mammalian ATM and ATR, respectively) over a 50-kilobase region surrounding the DSB3. This modification is important for recruiting numerous DSB-recognition and repair factors to the break site, including DNA damage checkpoint proteins4,5, chromatin remodellers6 and cohesins7,8. Multiple mechanisms for eliminating γH2AX as DNA repair completes are possible, including removal by histone exchange followed potentially by degradation, or, alternatively, dephosphorylation. Here we describe a three-protein complex (HTP-C, for histone H2A phosphatase complex) containing the phosphatase Pph3 that regulates the phosphorylation status of γH2AX in vivo and efficiently dephosphorylates γH2AX in vitro. γH2AX is lost from chromatin surrounding a DSB independently of the HTP-C, indicating that the phosphatase targets γH2AX after its displacement from DNA. The dephosphorylation of γH2AX by the HTP-C is necessary for efficient recovery from the DNA damage checkpoint.Keywords
This publication has 30 references indexed in Scilit:
- 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
- Global analysis of protein localization in budding yeastNature, 2003
- In Vivo Roles of Rad52, Rad54, and Rad55 Proteins in Rad51-Mediated RecombinationMolecular Cell, 2003
- Systematic Genetic Analysis with Ordered Arrays of Yeast Deletion MutantsScience, 2001
- Regulation of Saccharomyces Rad53 Checkpoint Kinase during Adaptation from DNA Damage–Induced G2/M ArrestPublished by Elsevier ,2001
- A human homologue of the checkpoint kinase Cds1 directly inhibits Cdc25 phosphataseCurrent Biology, 1999
- MATING-TYPE GENE SWITCHING IN SACCHAROMYCES CEREVISIAEAnnual Review of Genetics, 1998
- Saccharomyces Ku70, Mre11/Rad50, and RPA Proteins Regulate Adaptation to G2/M Arrest after DNA DamagePublished by Elsevier ,1998