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Publication : NBS1 Phosphorylation Status Dictates Repair Choice of Dysfunctional Telomeres.

First Author  Rai R Year  2017
Journal  Mol Cell Volume  65
Issue  5 Pages  801-817.e4
PubMed ID  28216226 Mgi Jnum  J:267805
Mgi Id  MGI:6269043 Doi  10.1016/j.molcel.2017.01.016
Citation  Rai R, et al. (2017) NBS1 Phosphorylation Status Dictates Repair Choice of Dysfunctional Telomeres. Mol Cell 65(5):801-817.e4
abstractText  Telomeres employ TRF2 to protect chromosome ends from activating the DNA damage sensor MRE11-RAD50-NBS1 (MRN), thereby repressing ATM-dependent DNA damage checkpoint responses. How TRF2 prevents MRN activation at dysfunctional telomeres is unclear. Here, we show that the phosphorylation status of NBS1 determines the repair pathway choice of dysfunctional telomeres. The crystal structure of the TRF2-NBS1 complex at 3.0 A resolution shows that the NBS1 429YQLSP433 motif interacts specifically with the TRF2(TRFH) domain. Phosphorylation of NBS1 serine 432 by CDK2 in S/G2 dissociates NBS1 from TRF2, promoting TRF2-Apollo/SNM1B complex formation and the protection of leading-strand telomeres. Classical-NHEJ-mediated repair of telomeres lacking TRF2 requires phosphorylated NBS1(S432) to activate ATM, while interaction of de-phosphorylated NBS1(S432) with TRF2 promotes alternative-NHEJ repair of telomeres lacking POT1-TPP1. Our work advances understanding of how the TRF2(TRFH) domain orchestrates telomere end protection and reveals how the phosphorylation status of the NBS1(S432) dictates repair pathway choice of dysfunctional telomeres.
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