Zadorsky S P, Sopova Y V, Andreichuk D Y, Startsev V A, Medvedeva V P, Inge-Vechtomov S G
Department of Genetics and Biotechnology, St Petersburg State University, St Petersburg, Russian Federation.
St. Petersburg Branch Vavilov Institute of General Genetics, Russian Academy of Science, St Petersburg, Russian Federation.
Yeast. 2015 Jun;32(6):479-97. doi: 10.1002/yea.3074. Epub 2015 May 6.
The SUP35 gene of the yeast Saccharomyces cerevisiae encodes the translation termination factor eRF3. Mutations in this gene lead to the suppression of nonsense mutations and a number of other pleiotropic phenotypes, one of which is impaired chromosome segregation during cell division. Similar effects result from replacing the S. cerevisiae SUP35 gene with its orthologues. A number of genetic and epigenetic changes that occur in the sup35 background result in partial compensation for this suppressor effect. In this study we showed that in S. cerevisiae strains in which the SUP35 orthologue from the yeast Pichia methanolica replaces the S. cerevisiae SUP35 gene, chromosome VIII disomy results in decreased efficiency of nonsense suppression. This antisuppressor effect is not associated with decreased stop codon read-through. We identified SBP1, a gene that localizes to chromosome VIII, as a dosage-dependent antisuppressor that strongly contributes to the overall antisuppressor effect of chromosome VIII disomy. Disomy of chromosome VIII also leads to a change in the yeast strains' tolerance of a number of transition metal salts.
酿酒酵母的SUP35基因编码翻译终止因子eRF3。该基因的突变会导致无义突变的抑制以及许多其他多效性表型,其中之一是细胞分裂过程中染色体分离受损。用其直系同源基因替换酿酒酵母SUP35基因也会产生类似的效果。在sup35背景中发生的许多遗传和表观遗传变化会部分补偿这种抑制作用。在本研究中,我们表明,在酿酒酵母菌株中,来自甲醇毕赤酵母的SUP35直系同源基因取代了酿酒酵母SUP35基因,第八条染色体的二体性会导致无义抑制效率降低。这种反抑制效应与终止密码子通读的降低无关。我们鉴定出位于第八条染色体上的SBP1基因是一种剂量依赖性反抑制因子,它对第八条染色体二体性的整体反抑制效应有很大贡献。第八条染色体的二体性还会导致酵母菌株对多种过渡金属盐的耐受性发生变化。