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酿酒酵母Sgs1解旋酶的遗传分析确定了在缺乏SRS2或TOP1时Sgs1-Top3复合物的一项基本功能。

Genetic analysis of the Saccharomyces cerevisiae Sgs1 helicase defines an essential function for the Sgs1-Top3 complex in the absence of SRS2 or TOP1.

作者信息

Dunø M, Thomsen B, Westergaard O, Krejci L, Bendixen C

机构信息

Section for Molecular Genetics, Danish Institute of Agricultural Sciences, Tjele.

出版信息

Mol Gen Genet. 2000 Sep;264(1-2):89-97. doi: 10.1007/s004380000286.

Abstract

The Saccharomyces cerevisiae gene SGS1 encodes a DNA helicase that shows homology to the Escherichia coli protein RecQ and the products of the BLM and WRN genes in humans, which are defective in Bloom's and Werner's syndrome, respectively. Recently, it has been proposed that this helicase is involved in maintaining the integrity of the rDNA and that loss of Sgs1 function leads to accelerated aging. Sgs1 has been isolated on the basis of its genetic interaction with both topoisomerase I and topoisomerase III, as well as in a two-hybrid screen for proteins that interact with the C-terminal portion of topoisomerase II. We have defined the minimal structural elements of Sgs1 required for its interactions with the three topoisomerases, and demonstrate that the complex phenotypes associated with sgs1 mutants are a consequence of a dysfunctional Sgs1-Top3 complex. We also report that the synthetic relationship between mutations in SGS1 and SRS2, which encodes another helicase implicated in recombinational repair, likewise result from a dysfunctional Sgs1-Top3 interaction. Our findings indicate that Sgs1 may act on different DNA structures depending on the activity of topoisomerase I, Srs2 and topoisomerase III.

摘要

酿酒酵母基因SGS1编码一种DNA解旋酶,该酶与大肠杆菌蛋白RecQ以及人类的BLM和WRN基因产物具有同源性,后两者分别在布卢姆综合征和沃纳综合征中存在缺陷。最近,有人提出这种解旋酶参与维持核糖体DNA(rDNA)的完整性,并且Sgs1功能的丧失会导致加速衰老。Sgs1是基于其与拓扑异构酶I和拓扑异构酶III的遗传相互作用以及在与拓扑异构酶II C末端部分相互作用的蛋白质的双杂交筛选中被分离出来的。我们已经确定了Sgs1与三种拓扑异构酶相互作用所需的最小结构元件,并证明与sgs1突变体相关的复杂表型是功能失调的Sgs1 - Top3复合物的结果。我们还报告说,SGS1和SRS2(编码另一种参与重组修复的解旋酶)突变之间的合成关系同样源于功能失调的Sgs1 - Top3相互作用。我们的研究结果表明,Sgs1可能根据拓扑异构酶I、Srs2和拓扑异构酶III的活性作用于不同的DNA结构。

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