Literature DB >> 16816432

The absence of Top3 reveals an interaction between the Sgs1 and Pif1 DNA helicases in Saccharomyces cerevisiae.

Marisa Wagner1, Gavrielle Price, Rodney Rothstein.   

Abstract

RecQ DNA helicases and Topo III topoisomerases have conserved genetic, physical, and functional interactions that are consistent with a model in which RecQ creates a recombination-dependent substrate that is resolved by Topo III. The phenotype associated with Topo III loss suggests that accumulation of a RecQ-created substrate is detrimental. In yeast, mutation of the TOP3 gene encoding Topo III causes pleiotropic defects that are suppressed by deletion of the RecQ homolog Sgs1. We searched for gene dosage suppressors of top3 and identified Pif1, a DNA helicase that acts with polarity opposite to that of Sgs1. Pif1 overexpression suppresses multiple top3 defects, but exacerbates sgs1 and sgs1 top3 defects. Furthermore, Pif1 helicase activity is essential in the absence of Top3 in an Sgs1-dependent manner. These data clearly demonstrate that Pif1 helicase activity is required to counteract Sgs1 helicase activity that has become uncoupled from Top3. Pif1 genetic interactions with the Sgs1-Top3 pathway are dependent upon homologous recombination. We also find that Pif1 is recruited to DNA repair foci and that the frequency of these foci is significantly increased in top3 mutants. Our results support a model in which Pif1 has a direct role in the prevention or repair of Sgs1-induced DNA damage that accumulates in top3 mutants.

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Year:  2006        PMID: 16816432      PMCID: PMC1602079          DOI: 10.1534/genetics.104.036905

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  83 in total

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  34 in total

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Review 3.  To peep into Pif1 helicase: multifaceted all the way from genome stability to repair-associated DNA synthesis.

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4.  Functional characterization of ribosomal protein L15 from Saccharomyces cerevisiae.

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5.  Sgs1 function in the repair of DNA replication intermediates is separable from its role in homologous recombinational repair.

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Journal:  EMBO J       Date:  2009-02-12       Impact factor: 11.598

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7.  Loss of mitochondrial DNA under genotoxic stress conditions in the absence of the yeast DNA helicase Pif1p occurs independently of the DNA helicase Rrm3p.

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8.  Fault tolerance in protein interaction networks: stable bipartite subgraphs and redundant pathways.

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9.  Interplay of Mre11 nuclease with Dna2 plus Sgs1 in Rad51-dependent recombinational repair.

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10.  DNA damage signalling prevents deleterious telomere addition at DNA breaks.

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