Bailis A M, Arthur L, Rothstein R
Department of Genetics and Development, Columbia University College of Physicians and Surgeons, New York, New York 10032.
Mol Cell Biol. 1992 Nov;12(11):4988-93. doi: 10.1128/mcb.12.11.4988-4993.1992.
Saccharomyces cerevisiae cells that are mutated at TOP3, a gene that encodes a protein homologous to bacterial type I topoisomerases, have a variety of defects, including reduced growth rate, altered gene expression, blocked sporulation, and elevated rates of mitotic recombination at several loci. The rate of ectopic recombination between two unlinked, homologous loci, SAM1 and SAM2, is sixfold higher in cells containing a top3 null mutation than in wild-type cells. Mutations in either of the two other known topoisomerase genes in S. cerevisiae, TOP1 and TOP2, do not affect the rate of recombination between the SAM genes. The top3 mutation also changes the distribution of recombination events between the SAM genes, leading to the appearance of novel deletion-insertion events in which conversion tracts extend beyond the coding sequence, replacing the DNA flanking the 3' end of one SAM gene with nonhomologous DNA flanking the 3' end of the other. The effects of the top3 null mutation on recombination are dependent on the presence of an intact RAD1 excision repair gene, because both the rate of SAM ectopic gene conversion and the conversion tract length were reduced in rad1 top3 mutant cells compared with top3 mutants. These results suggest that a RAD1-dependent function is involved in the processing of damaged DNA that results from the loss of Top3 activity, targeting such DNA for repair by recombination.
酿酒酵母细胞中,编码与细菌I型拓扑异构酶同源蛋白的TOP3基因发生突变后,会出现多种缺陷,包括生长速率降低、基因表达改变、孢子形成受阻以及几个位点的有丝分裂重组率升高。在两个不连锁的同源位点SAM1和SAM2之间,异位重组率在含有top3无效突变的细胞中比野生型细胞高六倍。酿酒酵母中另外两个已知的拓扑异构酶基因TOP1和TOP2中的任何一个发生突变,都不会影响SAM基因之间的重组率。top3突变还会改变SAM基因之间重组事件的分布,导致出现新的缺失插入事件,其中转换片段延伸超出编码序列,用另一个SAM基因3'端侧翼的非同源DNA取代一个SAM基因3'端侧翼的DNA。top3无效突变对重组的影响取决于完整的RAD1切除修复基因的存在,因为与top3突变体相比,rad1 top3突变体细胞中SAM异位基因转换率和转换片段长度均降低。这些结果表明,一种依赖RAD1的功能参与了因Top3活性丧失而导致的受损DNA的处理过程,将此类DNA靶向通过重组进行修复。