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Reference - PMID:19211838 - The role of MRN in the S-phase DNA damage checkpoint is independent of its Ctp1-dependent roles in double-strand break repair and checkpoint signaling.

Reference summary

PubMed ID
PMID:19211838
Title
The role of MRN in the S-phase DNA damage checkpoint is independent of its Ctp1-dependent roles in double-strand break repair and checkpoint signaling.
Authors
Porter-Goff ME, Rhind N
Citation
Mol Biol Cell 2009 Apr;20(7):2096-107
Publication year
2009
Abstract
The Mre11-Rad50-Nbs1 (MRN) complex has many biological functions: processing of double-strand breaks in meiosis, homologous recombination, telomere maintenance, S-phase checkpoint, and genome stability during replication. In the S-phase DNA damage checkpoint, MRN acts both in activation of checkpoint signaling and downstream of the checkpoint kinases to slow DNA replication. Mechanistically, MRN, along with its cofactor Ctp1, is involved in 5' resection to create single-stranded DNA that is required for both signaling and homologous recombination. However, it is unclear whether resection is essential for all of the cellular functions of MRN. To dissect the various roles of MRN, we performed a structure-function analysis of nuclease dead alleles and potential separation-of-function alleles analogous to those found in the human disease ataxia telangiectasia-like disorder, which is caused by mutations in Mre11. We find that several alleles of rad32 (the fission yeast homologue of mre11), along with ctp1Delta, are defective in double-strand break repair and most other functions of the complex, but they maintain an intact S phase DNA damage checkpoint. Thus, the MRN S-phase checkpoint role is separate from its Ctp1- and resection-dependent role in double-strand break repair. This observation leads us to conclude that other functions of MRN, possibly its role in replication fork metabolism, are required for S-phase DNA damage checkpoint function.

Annotation

Multi-locus phenotype

FYPO:0002150 - inviable spore population

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FYPO:0005404 - telomeric regions absent from linear chromosomes

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FYPO:0002060 - viable vegetative cell population

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Single locus phenotype

FYPO:0005268 - abnormal mitotic cell cycle regulation during cellular response to methyl methanesulfonate

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FYPO:0001118 - abnormal vegetative cell morphology

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FYPO:0001384 - abolished protein kinase activity

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FYPO:0000705 - abolished protein-protein interaction

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FYPO:0001382 - decreased protein kinase activity

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FYPO:0001645 - decreased protein-protein interaction

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FYPO:0000581 - decreased spore germination frequency

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FYPO:0001122 - elongated vegetative cell

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FYPO:0002150 - inviable spore population

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FYPO:0004286 - normal double-strand break repair via nonhomologous end joining

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FYPO:0004229 - normal growth during cellular response to ionizing radiation

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FYPO:0000969 - normal growth during cellular response to UV

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FYPO:0000963 - normal growth on hydroxyurea

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FYPO:0005373 - normal mitotic cell cycle regulation during cellular response to methyl methanesulfonate

Genes:

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FYPO:0003075 - normal protein kinase activity

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FYPO:0000703 - normal protein-protein interaction

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FYPO:0004993 - normal spore germination frequency

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FYPO:0000088 - sensitive to hydroxyurea

Genes:

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FYPO:0000267 - sensitive to ionizing radiation during vegetative growth

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FYPO:0000089 - sensitive to methyl methanesulfonate

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FYPO:0000268 - sensitive to UV during vegetative growth

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FYPO:0001234 - slow vegetative cell population growth

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FYPO:0000646 - swollen vegetative cell

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