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A new dominant peroxiredoxin allele identified by whole-genome re-sequencing of random mutagenized yeast causes oxidant-resistance and premature aging

机译:全基因组鉴定的新的显性过氧化物酶新等位基因 随机诱变酵母的重新测序会导致抗氧化剂和 早衰

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摘要

The combination of functional genomics with next generation sequencing facilitates new experimental strategies for addressing complex biological phenomena. Here, we report the identification of a gain-of-function allele of peroxiredoxin (thioredoxin peroxidase, Tsa1p) via whole-genome re-sequencing of a dominantSaccharomyces cerevisiae mutant obtained by chemical mutagenesis. Yeast strain K6001, a screening system for lifespan phenotypes, was treated with ethyl methanesulfonate (EMS). We isolated an oxidative stress-resistant mutant (B7) which transmitted this phenotype in a background-independent, monogenic and dominant way. By massive parallel pyrosequencing, we generated an 38.8 fold whole-genome coverage of the strains, which differed in 12,482 positions from the reference (S288c) genome. Via a subtraction strategy, we could narrow this number to 13 total and 4 missense nucleotide variations that were specific for the mutant. Via expression in wild type backgrounds, we show that one of these mutations, exchanging a residue in the peroxiredoxin Tsa1p, was responsible for the mutant phenotype causing background-independent dominant oxidative stress-resistance. These effects were not provoked by altered Tsa1p levels, nor could they be simulated by deletion, haploinsufficiency or over-expression of the wild-type allele. Furthermore, via both a mother-enrichment technique and a micromanipulation assay, we found a robust premature aging phenotype of this oxidant-resistant strain. Thus, TSA1-B7 encodes for a novel dominant form of peroxiredoxin, and establishes a new connection between oxidative stress and aging. In addition, this study shows that the re-sequencing of entire genomes is becoming a promising alternative for the identification of functional alleles in approaches of classic molecular genetics.
机译:功能基因组学与下一代测序的结合促进了解决复杂生物现象的新实验策略。在这里,我们报告了通过化学诱变获得的优势酿酒酵母突变体的全基因组重测序,鉴定了过氧化物irexin(硫氧还蛋白过氧化物酶,Tsa1p)功能增强的等位基因。用甲烷磺酸乙酯(EMS)处理酵母菌株K6001,这是一个针对寿命表型的筛选系统。我们分离了一个抗氧化胁迫的突变体(B7),该突变体以背景独立,单基因和显性方式传递了该表型。通过大规模并行焦磷酸测序,我们生成了该菌株全基因组覆盖率的38.8倍,与参考(S288c)基因组的位置相差12,482个。通过减法策略,我们可以将该数字限制为该突变体特异的13个共有核苷酸和4个错义核苷酸变异。通过在野生型背景中的表达,我们显示这些突变之一(交换过氧化物酶Tsa1p中的残基)是 负责导致背景独立的突变表型 显性氧化应激抗性。这些影响不是由 改变了Tsa1p的水平,也无法通过删除进行模拟, 单倍型不足或野生型等位基因的过度表达。此外, 通过母体富集技术和显微操作测定,我们 发现该抗氧化剂菌株具有强大的过早衰老表型。 因此,TSA1-B7编码一种新的显性形式的过氧化物酶, 并在氧化压力和老化之间建立了新的联系。在 此外,这项研究表明,整个基因组的重测序是 成为鉴定功能的有希望的替代方法 经典分子遗传学方法中的等位基因。

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