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Functional and physical interaction between Sgs1 and Top3 and Sgs1-independent function of Top3 in DNA recombination repair

机译:Sgs1和Top3之间的功能和物理相互作用以及Top3在DNA重组修复中的Sgs1独立功能

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References(41) Cited-By(8) A mutant allele of SGS1 of Saccharomyces cerevisiae was identified as a suppressor of the slow-growth phenotype of top3 mutants. We previously reported the involvement of Top3 via the interaction with the N-terminal region of Sgs1 in the complementation of methylmethanesulfonate (MMS) sensitivity and the suppression of hyper recombination of a sgs1 mutant. In this study, we found that several amino acids residues in the N-terminal region of Sgs1 between residues 4 and 33 were responsible for binding to Top3 and essential for complementing the sensitivity to MMS of sgs1 cells. Two-hybrid assays suggested that the region of Top3 responsible for the binding to Sgs1 was bipartite, with portion in the N- and C-terminal domains. Although disruption of the SGS1 gene suppressed the semi-lethality of the top3 mutant of strain MR, the sgs1-top3 double mutant grew more slowly and was more sensitive to MMS than the sgs1 single mutant, indicating that Top3 plays some role independently of Sgs1. The DNA topoisomerase activity of Top3 was required for the Top3 function to repair DNA damages induced by MMS, as shown by the fact that the TOP3 gene carrying a mutation (Phe for Tyr) at the amino acid residue essential for its activity (residue 356) failed to restore the MMS sensitivity of sgs1-top3 to the level of that of the sgs1 single mutant. Epistatic analysis using the sgs1-top3 double mutant, rad52 mutant and sgs1-top3-rad52 triple mutant indicated that TOP3 belongs to the RAD52 recombinational repair pathway.
机译:参考文献(41)被引用的By(8)酿酒酵母SGS1的突变等位基因被确定为top3突变体慢速表型的抑制剂。我们先前报道了Top3通过与Sgs1的N末端区域相互作用来补充甲基磺酸甲酯(MMS)的敏感性和抑制sgs1突变体的超重组。在这项研究中,我们发现Sgs1的N末端区域4和33之间的几个氨基酸残基负责与Top3结合,并且对于补充sgs1细胞对MMS的敏感性至关重要。两种杂交试验表明,负责与Sgs1结合的Top3区域是两部分的,一部分位于N-和C-末端结构域中。尽管SGS1基因的破坏抑制了MR菌株的top3突变体的半致死性,但sgs1-top3双重突变体比sgs1单个突变体生长更慢并且对MMS更为敏感,这表明Top3独立于Sgs1发挥了某些作用。 Top3的DNA拓扑异构酶活性是修复MMS诱导的DNA损伤所需的Top3功能所必需的,这一事实表明,TOP3基因在其活性必不可少的氨基酸残基上带有突变(Pyr为Tyr)(残基356)无法将sgs1-top3的MMS敏感性恢复到sgs1单个突变体的敏感性。使用sgs1-top3双突变体,rad52突变体和sgs1-top3-rad52三重突变体的上位性分析表明TOP3属于RAD52重组修复途径。

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