Abstract
Dna2 is a multifunctional enzyme in yeast that possesses endonuclease activity well suited to remove RNA-DNA primers of Okazaki fragments, raising the question of whether endonuclease activity is essential for in vivo Dna2 function. Systematic site-directed mutations of amino acid residues in Saccharomyces cerevisiae DNA2 conserved in the central region of many eukaryotic DNA2 homologs allowed us to identify mutant dna2 alleles that were divided into three groups based on the viability of the mutant cells: (i) viable; (ii) inviable only when expression was repressed; (iii) inviable. Biochemical analyses of recombinant mutant Dna2 proteins isolated from the latter two groups revealed that they possessed normal ATPase/helicase activity, but were impaired in their endonuclease activity. Cells expressing mutant Dna2 enzymes partially impaired in endonuclease activity were viable, but were unable to grow when expression of their mutant Dna2 enzymes was further reduced. Their growth was restored when the mutant Dna2 proteins decreased in nuclease activity were induced to overexpress. In contrast, mutant Dna2 proteins lacking endonuclease activity did not allow cells to grow under any conditions tested. These in vivo and in vitro results demonstrate that the endonuclease activity of Dna2 is essential for Okazaki fragment processing.
MeSH Terms
Adenosine Triphosphatases/chemistry,genetics,metabolism
Alleles
Amino Acid Sequence
Conserved Sequence
DNA/metabolism
DNA Helicases/chemistry,genetics,metabolism
Deoxyribonuclease BamHI/metabolism
Deoxyribonuclease EcoRI/metabolism
Endonucleases/metabolism
Gene Expression
Humans
Magnesium Chloride/pharmacology
Molecular Sequence Data
Mutagenesis, Site-Directed
Plasmids/genetics
Promoter Regions, Genetic
Recombinant Proteins
Saccharomyces cerevisiae/enzymology,growth & development
Saccharomyces cerevisiae Proteins
Sequence Homology
Structure-Activity Relationship
Transfection
Chemicals
Recombinant Proteins
Saccharomyces cerevisiae Proteins
Magnesium Chloride
DNA
Endonucleases
Deoxyribonuclease BamHI
Deoxyribonuclease EcoRI
Adenosine Triphosphatases
DNA Helicases
DNA2 protein, S cerevisiae
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Lee K H
National Creative Research Initiative Center for Cell Cycle Control, Sungkyunkwan University School of Medicine, 300 Chunchun-Dong, Changan-Ku, Suwon-Si, Kyunggi-Do 440-746, Korea.
Kim D W
Bae S H
Kim J A
Ryu G H
Kwon Y N
Kim K A
Koo H S
Seo Y S
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