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Biology subjects

Symington, L. S.

Publications and source records attributed to Symington, L. S..

2 recordsLinked to original sources

Xrs2 and Tel1 independently contribute to MR-mediated DNA tethering and replisome stability

The yeast Mre11-Rad50-Xrs2 (MRX) complex has structural, signaling and catalytic functions in the cellular response to DNA damage. Xrs2, the eukaryotic-specific component of the complex, is required for nuclear import of Mre11 and Rad50, and to recruit the Tel1 kinase to damage sites. We show that nuclear-localized MR complex (Mre11-NLS) catalyzes homology-dependent repair without Xrs2, but MR cannot activate Tel1 and it fails to tether DSBs resulting in sensitivity to genotoxins, replisome instability and increased gross chromosome rearrangements (GCRs). Fusing the Tel1 interaction domain from Xrs2 to Mre11-NLS is sufficient to restore telomere elongation and Tel1 signaling to Xrs2-deficient cells. Furthermore, Tel1 stabilizes Mre11-DNA association, and this stabilization function becomes important for DNA damage resistance in the absence of Xrs2. Enforcing Tel1 recruitment to the nuclear MR complex fully rescues end tethering, stalled replication fork stability and suppresses GCRs, highlighting important roles for Xrs2 and Tel1 to ensure optimal MR activity.\n\nHighlightsO_LIXrs2 is required for recruitment but not for activation of Tel1 kinase\nC_LIO_LITel1 and Xrs2 function independently to optimize MR activity at DSBs and stalled replication forks\nC_LIO_LIStable association of Mre11 at DSBs is required to maintain end-to-end tethering\nC_LIO_LIMR-mediated DNA tethering promotes replisome stability and genome integrity\nC_LI

genetics

Sae2 antagonizes Rad9 accumulation at DNA double-strand breaks to attenuate checkpoint signaling and facilitate end resection

The Mre11-Rad50-Xrs2NBS1 complex plays important roles in the DNA damage response by activating the Tel1ATM kinase and catalyzing 5-3 resection at DNA double-strand breaks (DSBs). To initiate resection, Mre11 endonuclease nicks the 5 strands at DSB ends in a reaction stimulated by Sae2CtIP. Accordingly, Mre11-nuclease deficient (mre11-nd) and sae2{Delta} mutants are expected to exhibit similar phenotypes; however, we found several notable differences. First, sae2{Delta} cells exhibit greater sensitivity to genotoxins than mre11-nd cells. Second, sae2{Delta} is synthetic lethal with sgs1{Delta}, whereas the mre11-nd sgs1{Delta} mutant is viable. Third, Sae2 attenuates the Tel1-Rad53CHK2 checkpoint and antagonizes Rad953BP1 accumulation at DSBs independent of Mre11 nuclease. We show that Sae2 competes with other Tel1 substrates, thus reducing Rad9 binding to chromatin and to Rad53. We suggest that persistent Sae2 binding at DSBs in the mre11-nd mutant counteracts the inhibitory effects of Rad9 and Rad53 on Exo1 and Dna2-Sgs1 mediated resection, accounting for the different phenotypes conferred by mre11-nd and sae2{Delta} mutations. Collectively, these data show a resection initiation independent role for Sae2 at DSBs by modulating the DNA damage checkpoint.

genetics