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Postreplicative Formation of Cohesion Is Required for Repair and Induced by a Single DNA Break
Lena Ström,1Charlotte Karlsson,1Hanna Betts Lindroos,1Sara Wedahl,1Yuki Katou,2Katsuhiko Shirahige,2Camilla Sjögren1*
Sister-chromatid cohesion, established during replication bythe protein complex cohesin, is essential for both chromosomesegregation and double-strand break (DSB) repair. Normally,cohesion formation is strictly limited to the S phase of thecell cycle, but DSBs can trigger cohesion also after DNA replicationhas been completed. The function of this damage-induced cohesionremains unknown. In this investigation, we show that damage-inducedcohesion is essential for repair in postreplicative cells inyeast. Furthermore, it is established genome-wide after inductionof a single DSB, and it is controlled by the DNA damage responseand cohesin-regulating factors. We thus define a cohesion establishmentpathway that is independent of DNA duplication and acts togetherwith cohesion formed during replication in sister chromatidbasedDSB repair.
1 Department of Cell and Molecular Biology, Karolinska Institute, 171 77 Stockholm, Sweden. 2 Gene Research Centre, Tokyo Institute of Technology, 4259 Nagatsuta, Midori-ku, 226-8501 Yokohama, Japan.
* To whom correspondence should be addressed. E-mail: camilla.sjogren{at}ki.se
Guy Riddihough (17 July 2007) Sci. STKE2007 (395), tw257.
[DOI: 10.1126/stke.3952007tw257] |Abstract »
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