• Title/Summary/Keyword: Okazaki fragment processing

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Cohesion Establishment Factors Stimulate Endonuclease Activity of hFen1 Independently and Cooperatively

  • Kim, Do-Hyung;Kim, Jeong-Hoon;Park, Byoung Chul;Cho, Sayeon;Park, Sung Goo
    • Journal of Microbiology and Biotechnology
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    • v.25 no.10
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    • pp.1768-1771
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    • 2015
  • Human Fen1 protein (hFen1) plays an important role in Okazaki fragment processing by cleaving the flap structure at the junction between single-stranded (ss) DNA and doublestranded (ds) DNA, an intermediate formed during Okazaki fragment processing, resulting in ligatable nicked dsDNA. It was reported that hChlR1, a member of the cohesion establishment factor family, stimulates hFen1 nuclease activity regardless of its ATPase activity. In this study, we found that cohesion establishment factors cooperatively stimulate endonuclease activity of hFen1 in in vivo mimic condition, including replication protein-A-coated DNA and high salt. Our findings are helpful to explain how a DNA replication machinery larger than the cohesion complex goes through the cohesin ring structure on DNA during S phase in the cell cycle.

Human ChlR1 Stimulates Endonuclease Activity of hFen1 Independently of ATPase Activity

  • Kim, Do-Hyung;Kim, Jeong-Hoon;Park, Byoung Chul;Lee, Do Hee;Cho, Sayeon;Park, Sung Goo
    • Bulletin of the Korean Chemical Society
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    • v.35 no.10
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    • pp.3005-3008
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    • 2014
  • Human ChlR1 protein (hChlR1), a member of the cohesion establishment factor family, plays an important role in the segregation of sister chromatids for maintenance of genome integrity. We previously reported that hChlR1 interacts with hFen1 and stimulates its nuclease activity on the flap-structured DNA substrate covered with RPA. To elucidate the relationship between hChlR1 and Okazaki fragment processing, the effect of hChlR1 on in vitro nuclease activities of hFen1 and hDna2 was examined. Independent of ATPase activity, hChlR1 stimulated endonuclease activity of hFen1 but not that of hDna2. Our findings suggest that the acceleration of Okazaki fragment processing near cohesions may aid in reducing the size of the replication machinery, thereby facilitating its entry through the cohesin ring.

RPA-governed Endonuclease Switching during Eukaryotic Okazaki Fragment Processing.

  • Bae, Sung-Ho;Bae, Kwang-Hee;Kim, Jung-Ae;Seo, Yeon-Soo
    • Proceedings of the Korean Biophysical Society Conference
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    • 2001.06a
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    • pp.22-22
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    • 2001
  • At the eukaryotic replication fork, discontinuous synthesis of lagging strand DNA gives rise to Okazaki fragments carrying ribonucleotides derived from the primer RNA at their 5' ends. Efficient removal of these ribonucleotides is vital for maintaining genome integrity. In this report we show that the endonucleases Dna2 and Fen1 act sequentially to facilitate the complete removal of the primer RNA.(omitted)

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Dna2 Helicase/endonuclease Interacts with a Novel Protein YHR122W Protein in Saccharomyces cerevisiae (Saccharomyces cerevisiae에서 Dna2 helicase/endonuclease와 YHR122W 단백질의 상호작용)

  • Lee, Hyun-Sun;Choi, Do-Hee;Kwon, Sung-Hoon;Kim, Na-Yeon;Lee, In-Hwan;Kim, Hyun-Jung;Bae, Sung-Ho
    • Korean Journal of Microbiology
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    • v.42 no.1
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    • pp.1-6
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    • 2006
  • Saccharomyces cerevisiae Dna2 helicase/endonuclease plays an essential role in removing DNA primers during Okazaki fragment processing in eukaryotic DNA replication. Genome-wide scale co-immunoprecipitation experiments predicted that Dna2 interacts with a novel protein YHR122W (1). In this study, we observed that overexpression of YHR122W gene suppressed the temperature-sensitive phenotype of $dna2\Delta405N$ mutation. To investigate direct interaction between these two proteins, a histidine-tagged recombinant YHR122W protein was expressed and purified from E. coli. Physical interaction between the purified YHR122W and Dna2 proteins was detected by enzyme-linked immunosorbent assays. Further more, the complex formation was most efficient at physiological salt concentration, 150 mM NaCl. The genetic and physical interactions between YHR122W and Dna2 shown in this study suggest that the biological functions of these two proteins may be closely related each other.