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全基因组筛选鉴定出酿酒酵母中形成摆动核苷5-甲氧羰基甲基-2-硫代尿苷所需的基因。

A genome-wide screen identifies genes required for formation of the wobble nucleoside 5-methoxycarbonylmethyl-2-thiouridine in Saccharomyces cerevisiae.

作者信息

Huang Bo, Lu Jian, Byström Anders S

机构信息

Department of Molecular Biology, Umeå University, 901 87 Umeå, Sweden.

出版信息

RNA. 2008 Oct;14(10):2183-94. doi: 10.1261/rna.1184108. Epub 2008 Aug 28.

Abstract

We recently showed that the gamma-subunit of Kluyveromyces lactis killer toxin (gamma-toxin) is a tRNA endonuclease that cleaves tRNA(mcm5s2UUC Glu), tRNA(mcm5s2UUU Lys), and tRNA(mcm5s2UUG Gln) 3' of the wobble nucleoside 5-methoxycarbonylmethyl-2-thiouridine (mcm(5)s(2)U). The 5-methoxycarbonylmethyl (mcm(5)) side chain was important for efficient cleavage by gamma-toxin, and defects in mcm(5) side-chain synthesis correlated with resistance to gamma-toxin. Based on this correlation, a genome-wide screen was performed to identify gene products involved in the formation of the mcm(5) side chain. From a collection of 4826 homozygous diploid Saccharomyces cerevisiae strains, each with one nonessential gene deleted, 63 mutants resistant to Kluyveromyces lactis killer toxin were identified. Among these, eight were earlier identified to have a defect in formation of the mcm(5) side chain. Analysis of the remaining mutants and other known gamma-toxin resistant mutants revealed that sit4, kti14, and KTI5 mutants also have a defect in the formation of mcm(5). A mutant lacking two of the Sit4-associated proteins, Sap185 and Sap190, displays the same modification defect as a sit4-null mutant. Interestingly, several mutants were found to be defective in the synthesis of the 2-thio (s(2)) group of the mcm(5)s(2)U nucleoside. In addition to earlier described mutants, formation of the s(2) group was also abolished in urm1, uba4, and ncs2 mutants and decreased in the yor251c mutant. Like the absence of the mcm(5) side chain, the lack of the s(2) group renders tRNA(mcm5s2UUC Glu) less sensitive to gamma-toxin, reinforcing the importance of the wobble nucleoside mcm(5)s(2)U for tRNA cleavage by gamma-toxin.

摘要

我们最近发现,乳酸克鲁维酵母杀伤毒素的γ亚基(γ毒素)是一种tRNA内切核酸酶,可在摆动核苷5-甲氧基羰基甲基-2-硫代尿苷(mcm(5)s(2)U)的3'端切割tRNA(mcm5s2UUC Glu)、tRNA(mcm5s2UUU Lys)和tRNA(mcm5s2UUG Gln)。5-甲氧基羰基甲基(mcm(5))侧链对γ毒素的有效切割很重要,mcm(5)侧链合成缺陷与对γ毒素的抗性相关。基于这种相关性,进行了全基因组筛选以鉴定参与mcm(5)侧链形成的基因产物。从4826个纯合二倍体酿酒酵母菌株的集合中,每个菌株缺失一个非必需基因,鉴定出63个对乳酸克鲁维酵母杀伤毒素有抗性的突变体。其中,有8个先前被鉴定为在mcm(5)侧链形成方面存在缺陷。对其余突变体和其他已知的γ毒素抗性突变体的分析表明,sit4、kti14和KTI5突变体在mcm(5)的形成方面也存在缺陷。一个缺少两个与Sit4相关蛋白Sap185和Sap190的突变体表现出与sit4缺失突变体相同的修饰缺陷。有趣的是,发现几个突变体在mcm(5)s(2)U核苷的2-硫代(s(2))基团合成方面存在缺陷。除了先前描述的突变体,urm1、uba4和ncs2突变体中s(2)基团的形成也被消除,而yor251c突变体中s(2)基团的形成减少。与缺少mcm(5)侧链一样,缺少s(2)基团使tRNA(mcm5s2UUC Glu)对γ毒素的敏感性降低,这强化了摆动核苷mcm(5)s(2)U对γ毒素切割tRNA的重要性。

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