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In vitro Evidence that Purified Yeast Rad27 and Dna2 are not Stably Associated with Each Other Suggests that an Additional Protein(s) is Required for a Complex Formation
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  • In vitro Evidence that Purified Yeast Rad27 and Dna2 are not Stably Associated with Each Other Suggests that an Additional Protein(s) is Required for a Complex Formation
  • In vitro Evidence that Purified Yeast Rad27 and Dna2 are not Stably Associated with Each Other Suggests that an Additional Protein(s) is Required for a Complex Formation
저자명
Bae. Sung-Ho,Seo. Yeon-Soo
간행물명
Journal of biochemistry and molecular biology
권/호정보
2000년|33권 2호|pp.155-161 (7 pages)
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생화학분자생물학회
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정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

The saccharomyces cerevisiae Rad27, a structure-specific endonuclease for the okazaski fragment maturation has been known to interact genetically and biochemically with Dna2, an essential enzyme for DNA replication. In an attempt to define the significance of the interaction between the two enzymes, we expressed and purified both Dna2 and Rad27 proteins. In this report, Rad27 could not form a complex with Dna2 in the three different analyses. The analyses included glycerol gradient sedimentation, protein-column chromatography, and coinfection of baculoviruses followed by affinity purification. This is in striking contrast to the previous results that used crude extracts. These results suggest that the interaction between the two proteins is not sufficiently stable or indirect, and thus requires an additional protein(s) in order for Rad27 and Dna2 to form a stable physical complex. This result is consistent with our genetic findings that Schizosaccharomyces pombe Dna2 is capable of interacting with several proteins that include two subunits of polymerase $delta$, DNA ligase I, as well as Fen-1. In addition, we found that the N-terminal modification of Rad27 abolished its enzymatic activity. Thus, as suspected, we found that on the basis of the structure determination, N-terminal methionine indeed plays an important role in the nucleolytic cleavage reaction.