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Reference - PMID:31332096 - A tel2 Mutation That Destabilizes the Tel2-Tti1-Tti2 Complex Eliminates Rad3 ATR Kinase Signaling in the DNA Replication Checkpoint and Leads to Telomere Shortening in Fission Yeast.

Reference summary

PubMed ID
PMID:31332096
Title
A tel2 Mutation That Destabilizes the Tel2-Tti1-Tti2 Complex Eliminates Rad3 ATR Kinase Signaling in the DNA Replication Checkpoint and Leads to Telomere Shortening in Fission Yeast.
Authors
Xu YJ, Khan S, Didier AC, Wozniak M, Liu Y, Singh A, Nakamura TM
Citation
Mol Cell Biol 2019 Oct 15;39(20)
Publication year
2019
Abstract
In response to perturbed DNA replication, ATR (ataxia telangiectasia and Rad3-related) kinase is activated to initiate the checkpoint signaling necessary for maintaining genome integrity and cell survival. To better understand the signaling mechanism, we carried out a large-scale genetic screen in fission yeast looking for mutants with enhanced sensitivity to hydroxyurea. From a collection of ∼370 primary mutants, we found a few mutants in which Rad3 (ATR ortholog)-mediated phospho-signaling was significantly compromised. One such mutant carried an uncharacterized mutation in tel2 , a gene encoding an essential and highly conserved eukaryotic protein. Previous studies in various biological models have shown that Tel2 mainly functions in Tel2-Tti1-Tti2 (TTT) complex that regulates the steady-state levels of all phosphatidylinositol 3-kinase-like protein kinases, including ATR. We show here that although the levels of Rad3 and Rad3-mediated phospho-signaling in DNA damage checkpoint were moderately reduced in the tel2 mutant, the phospho-signaling in the DNA replication checkpoint was almost completely eliminated. In addition, the tel2 mutation caused telomere shortening. Since the interactions of Tel2 with Tti1 and Tti2 were significantly weakened by the mutation, destabilization of the TTT complex likely contributes to the observed checkpoint and telomere defects.

Annotation

Complementation

PBO:0091569 - is not functionally complemented by human TELO2

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Multi-locus phenotype

FYPO:0000095 - sensitive to bleomycin

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Genotypes:

FYPO:0000088 - sensitive to hydroxyurea

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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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Single locus phenotype

FYPO:0003814 - abolished response to S-phase DNA damage checkpoint signaling

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FYPO:0000229 - cut

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FYPO:0001324 - decreased protein level during vegetative growth

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FYPO:0003803 - decreased protein localization to telomere

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FYPO:0001645 - decreased protein-protein interaction

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FYPO:0004372 - decreased response to mitotic G2 DNA damage checkpoint signaling

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FYPO:0001355 - decreased vegetative cell population growth

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FYPO:0000158 - DNA content increased during vegetative growth

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FYPO:0001327 - increased protein level during vegetative growth

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FYPO:0002151 - inviable spore

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FYPO:0002061 - inviable vegetative cell population

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Genotypes:

FYPO:0000095 - sensitive to bleomycin

Genes:

Genotypes:

FYPO:0000088 - sensitive to hydroxyurea

Genes:

Genotypes:

FYPO:0000089 - sensitive to methyl methanesulfonate

Genes:

Genotypes:

FYPO:0000268 - sensitive to UV during vegetative growth

Genes:

Genotypes:

FYPO:0002239 - shortened telomeres during vegetative growth

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Genotypes: