Global translational impacts of the loss of the tRNA modification t6A in yeast

IF 4.1 3区 生物学 Q2 CELL BIOLOGY Microbial Cell Pub Date : 2015-12-18 DOI:10.15698/mic2016.01.473
P. Thiaville, R. Legendre, Diego Rojas-Benítez, Agnès Baudin-Baillieu, I. Hatin, Guilhem Chalancon, Álvaro Glavic, O. Namy, V. de Crécy-Lagard
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引用次数: 84

Abstract

The universal tRNA modification t6A is found at position 37 of nearly all tRNAs decoding ANN codons. The absence of t6A37 leads to severe growth defects in baker’s yeast, phenotypes similar to those caused by defects in mcm5s2U34 synthesis. Mutants in mcm5s2U34 can be suppressed by overexpression of tRNALysUUU, but we show t6A phenotypes could not be suppressed by expressing any individual ANN decoding tRNA, and t6A and mcm5s2U are not determinants for each other’s formation. Our results suggest that t6A deficiency, like mcm5s2U deficiency, leads to protein folding defects, and show that the absence of t6A led to stress sensitivities (heat, ethanol, salt) and sensitivity to TOR pathway inhibitors. Additionally, L-homoserine suppressed the slow growth phenotype seen in t6A-deficient strains, and proteins aggregates and Advanced Glycation End-products (AGEs) were increased in the mutants. The global consequences on translation caused by t6A absence were examined by ribosome profiling. Interestingly, the absence of t6A did not lead to global translation defects, but did increase translation initiation at upstream non-AUG codons and increased frame-shifting in specific genes. Analysis of codon occupancy rates suggests that one of the major roles of t6A is to homogenize the process of elongation by slowing the elongation rate at codons decoded by high abundance tRNAs and I34:C3 pairs while increasing the elongation rate of rare tRNAs and G34:U3 pairs. This work reveals that the consequences of t6A absence are complex and multilayered and has set the stage to elucidate the molecular basis of the observed phenotypes.
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tRNA修饰t6A缺失对酵母整体翻译的影响
通用tRNA修饰t6A位于几乎所有解码ANN密码子的tRNA的第37位。缺乏t6A37会导致面包酵母严重的生长缺陷,其表型与mcm5s2U34合成缺陷引起的表型相似。mcm5s2U34的突变体可以通过tRNALysUUU的过表达来抑制,但我们发现t6A表型不能通过表达任何单个ANN解码tRNA来抑制,t6A和mcm5s2U不是彼此形成的决定因素。我们的研究结果表明,t6A的缺乏与mcm5s2U的缺乏一样,会导致蛋白质折叠缺陷,并表明t6A的缺乏会导致应激敏感性(热、乙醇、盐)和对TOR通路抑制剂的敏感性。此外,l -高丝氨酸抑制了t6a缺陷菌株的缓慢生长表型,并且突变体中的蛋白质聚集体和晚期糖基化终产物(AGEs)增加。通过核糖体分析检查了t6A缺失对翻译的总体影响。有趣的是,t6A的缺失并未导致全局翻译缺陷,但确实增加了上游非aug密码子的翻译起始,并增加了特定基因的帧移位。对密码子占用率的分析表明,t6A的主要作用之一是通过减缓高丰度trna和I34:C3对解码的密码子的延伸率,同时提高稀有trna和G34:U3对解码的密码子的延伸率,从而使延伸过程均匀化。这项工作揭示了t6A缺失的后果是复杂和多层次的,并为阐明观察到的表型的分子基础奠定了基础。
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来源期刊
Microbial Cell
Microbial Cell Multiple-
CiteScore
6.40
自引率
0.00%
发文量
32
审稿时长
12 weeks
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