|  Help  |  About  |  Contact Us

Publication : ATM controls meiotic double-strand-break formation.

First Author  Lange J Year  2011
Journal  Nature Volume  479
Issue  7372 Pages  237-40
PubMed ID  22002603 Mgi Jnum  J:178306
Mgi Id  MGI:5298129 Doi  10.1038/nature10508
Citation  Lange J, et al. (2011) ATM controls meiotic double-strand-break formation. Nature 479(7372):237-40
abstractText  In many organisms, developmentally programmed double-strand breaks (DSBs) formed by the SPO11 transesterase initiate meiotic recombination, which promotes pairing and segregation of homologous chromosomes. Because every chromosome must receive a minimum number of DSBs, attention has focused on factors that support DSB formation. However, improperly repaired DSBs can cause meiotic arrest or mutation; thus, having too many DSBs is probably as deleterious as having too few. Only a small fraction of SPO11 protein ever makes a DSB in yeast or mouse and SPO11 and its accessory factors remain abundant long after most DSB formation ceases, implying the existence of mechanisms that restrain SPO11 activity to limit DSB numbers. Here we report that the number of meiotic DSBs in mouse is controlled by ATM, a kinase activated by DNA damage to trigger checkpoint signalling and promote DSB repair. Levels of SPO11-oligonucleotide complexes, by-products of meiotic DSB formation, are elevated at least tenfold in spermatocytes lacking ATM. Moreover, Atm mutation renders SPO11-oligonucleotide levels sensitive to genetic manipulations that modulate SPO11 protein levels. We propose that ATM restrains SPO11 via a negative feedback loop in which kinase activation by DSBs suppresses further DSB formation. Our findings explain previously puzzling phenotypes of Atm-null mice and provide a molecular basis for the gonadal dysgenesis observed in ataxia telangiectasia, the human syndrome caused by ATM deficiency.
Quick Links:
 
Quick Links:
 

Expression

Publication --> Expression annotations

 

Other

12 Bio Entities

Trail: Publication

0 Expression