Department of Biochemistry and Cell Biology, University of Rzeszow, Poland; Centre of Applied Biotechnology and Basic Sciences, University of Rzeszow, Kolbuszowa, Poland.
Centre of Applied Biotechnology and Basic Sciences, University of Rzeszow, Kolbuszowa, Poland; Department of Genetics, University of Rzeszow, Rejtana 16C, PL 35-959 Rzeszow, Poland.
Fungal Genet Biol. 2014 Feb;63:9-16. doi: 10.1016/j.fgb.2013.12.003. Epub 2013 Dec 12.
The tools and techniques used in single-cell analysis of DNA damage in yeast Saccharomyces cerevisiae are limited. In this study, we modified the single cell gel electrophoresis assay, namely, the single chromosome comet assay based on DNA break analysis, at the chromosomal level. We studied the largest yeast chromosome XII, which contains the rDNA locus, and we investigated its instability using cell cycle checkpoint-, DNA damage- and antioxidative defence-deficient, and lifespan-deregulated yeast mutant strains. Moreover, we compared chromosome XII instability with the variability of nucleolar rDNA fluorescence signals. Three single-gene-deletion strains, cells lacking single-stranded DNA endonuclease, Rad1p; NAD(+)-dependent histone deacetylase, Sir2p; and gamma glutamylcysteine synthetase, Gsh1p, were more prone to chromosome XII instability compared to corresponding wildtype strains, indicating that DNA damage repair machinery, chromatin silencing and redox homeostasis may contribute to genome stability. Elevation in the number of DNA breaks was correlated with a high variability in the levels of nucleolar rDNA in the Δrad1 background, while unaffected chromosome XII and low variability in nucleolar rDNA fluorescence signals were observed in the Δtor1 longevity mutant. Taken together, the single chromosome comet assay may be successfully used to study DNA damage at the chromosomal level, which might be overlooked using whole population analysis on DNA breaks with PFGE separation.
在酵母酿酒酵母的 DNA 损伤单细胞分析中使用的工具和技术是有限的。在这项研究中,我们在染色体水平上修改了单细胞凝胶电泳分析,即基于 DNA 断裂分析的单细胞彗星分析。我们研究了最大的酵母染色体 XII,它包含 rDNA 基因座,并使用细胞周期检查点缺陷、DNA 损伤和抗氧化防御缺陷以及寿命失调的酵母突变株研究了其不稳定性。此外,我们比较了染色体 XII 的不稳定性与核仁 rDNA 荧光信号的可变性。与相应的野生型菌株相比,缺乏单链 DNA 内切酶 Rad1p、NAD(+)-依赖性组蛋白去乙酰化酶 Sir2p 和γ谷氨酰半胱氨酸合成酶 Gsh1p 的三个单基因缺失菌株更容易发生染色体 XII 不稳定性,表明 DNA 损伤修复机制、染色质沉默和氧化还原稳态可能有助于基因组稳定性。DNA 断裂数量的增加与Δrad1 背景中核仁 rDNA 水平的高变异性相关,而在长寿突变体Δtor1 中观察到未受影响的染色体 XII 和核仁 rDNA 荧光信号的低变异性。总之,单细胞彗星分析可成功用于研究染色体水平的 DNA 损伤,而使用 PFGE 分离的全种群分析可能会忽略这种损伤。