SPO11 is required for sex-body formation, and Spo11 heterozygosity rescues the prophase arrest ofAtm-/- spermatocytes
- 1 August 2005
- journal article
- Published by The Company of Biologists in Journal of Cell Science
- Vol. 118 (15) , 3233-3245
- https://doi.org/10.1242/jcs.02466
Abstract
SPO11 introduces double-strand breaks (DSBs) that trigger the phosphorylation of H2AX during meiotic prophase. In mice, SPO11 is strictly required for initiation of meiotic recombination and synapsis, yet SPO11 is still considered to be dispensable for sex-body formation in mouse spermatocytes. We provide conclusive evidence showing that functional SPO11, and consequently recombination and synapsis, are required for phosphorylation of H2AX in the X-Y chromatin and for sex-body formation in mouse spermatocytes. We investigated the role in meiosis of the three kinases [ATM (ataxia telangiectasia mutated), ATR (ataxia-telangiectasia- and Rad-3-related) and DNA-PKcs (DNA-dependent-protein-kinase catalytic subunit)] known to phosphorylate H2AX in mitotic cells. We found that DNA-PKcs can be ruled out as an essential kinase in this process, whereas ATM is strictly required for the chromatin-wide phosphorylation of H2AX occurring in leptotene spermatocytes in response to DSBs. Remarkably, we discovered that Spo11 heterozygosity can rescue the prophase-I-arrest characteristic of ATM-deficient spermatocytes. Characterization of the rescued Atm-/-Spo11+/- mutant indicates that ATM is dispensable for sex-body formation and phosphorylation of H2AX in this subnuclear domain. The co-localization of ATR, phosphorylated H2AX and the sex chromatin observed in the Atm-/-Spo11+/- mutant, along with ATR transcription kinetics during the first wave of spermatogenesis, confirm and expand recent findings indicating that ATR is the kinase involved in H2AX phosphorylation in the sex body.Keywords
This publication has 53 references indexed in Scilit:
- Silencing of unsynapsed meiotic chromosomes in the mouseNature Genetics, 2004
- DNA Damage Response Pathway Uses Histone Modification to Assemble a Double-Strand Break-Specific Cohesin DomainMolecular Cell, 2004
- Ataxia Telangiectasia Mutated Expression and Activation in the Testis1Biology of Reproduction, 2004
- H2AX regulates meiotic telomere clusteringThe Journal of cell biology, 2003
- DNA damage activates ATM through intermolecular autophosphorylation and dimer dissociationNature, 2003
- Genomic Instability in Mice Lacking Histone H2AXScience, 2002
- Partial rescue of the prophase I defects of Atm-deficient mice by p53 and p21 null allelesNature Genetics, 1997
- Active and inactive genes localize preferentially in the periphery of chromosome territories.The Journal of cell biology, 1996
- Atm-Deficient Mice: A Paradigm of Ataxia TelangiectasiaCell, 1996
- The mammalian pseudoautosomal regionTrends in Genetics, 1989