Evidence Suggesting that Pif1 Helicase Functions in DNA Replication with the Dna2 Helicase/Nuclease and DNA Polymerase δ

Author:

Budd Martin E.1,Reis Clara C.12,Smith Stephanie3,Myung Kyungjae3,Campbell Judith L.1

Affiliation:

1. Braun Laboratories, California Institute of Technology, Pasadena, California 91125

2. Gulbenkian Ph.D. Program in Biomedicine, Rua da Quinta Grande 6, 2780-156 Oeiras, Portugal

3. Genetics & Molecular Biology Branch, National Human Genome Research Institute, NIH, Bethesda, Maryland 20892-4442

Abstract

ABSTRACT The precise machineries required for two aspects of eukaryotic DNA replication, Okazaki fragment processing (OFP) and telomere maintenance, are poorly understood. In this work, we present evidence that Saccharomyces cerevisiae Pif1 helicase plays a wider role in DNA replication than previously appreciated and that it likely functions in conjunction with Dna2 helicase/nuclease as a component of the OFP machinery. In addition, we show that Dna2, which is known to associate with telomeres in a cell-cycle-specific manner, may be a new component of the telomere replication apparatus. Specifically, we show that deletion of PIF1 suppresses the lethality of a DNA2 -null mutant. The pif1 Δ dna2 Δ strain remains methylmethane sulfonate sensitive and temperature sensitive; however, these phenotypes can be suppressed by further deletion of a subunit of pol δ, POL32 . Deletion of PIF1 also suppresses the cold-sensitive lethality and hydroxyurea sensitivity of the pol32 Δ strain. Dna2 is thought to function by cleaving long flaps that arise during OFP due to excessive strand displacement by pol δ and/or by an as yet unidentified helicase. Thus, suppression of dna2 Δ can be rationalized if deletion of POL32 and/or PIF1 results in a reduction in long flaps that require Dna2 for processing. We further show that deletion of DNA2 suppresses the long-telomere phenotype and the high rate of formation of gross chromosomal rearrangements in pif1 Δ mutants, suggesting a role for Dna2 in telomere elongation in the absence of Pif1.

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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