首页> 外文期刊>PLoS Genetics >Hypomodified tRNA in evolutionarily distant yeasts can trigger rapid tRNA decay to activate the general amino acid control response, but with different consequences
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Hypomodified tRNA in evolutionarily distant yeasts can trigger rapid tRNA decay to activate the general amino acid control response, but with different consequences

机译:在进化的远处酵母中的Hypomodifed TRNA可以触发快速的TRNA衰减以激活一般氨基酸对照反应,但具有不同的后果

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All tRNAs are extensively modified, and modification deficiency often results in growth defects in the budding yeast Saccharomyces cerevisiae and neurological or other disorders in humans. In S . cerevisiae , lack of any of several tRNA body modifications results in rapid tRNA decay (RTD) of certain mature tRNAs by the 5’-3’ exonucleases Rat1 and Xrn1. As tRNA quality control decay mechanisms are not extensively studied in other eukaryotes, we studied trm8Δ mutants in the evolutionarily distant fission yeast Schizosaccharomyces pombe , which lack 7-methylguanosine at G _(46) (m ~(7)G _(46)) of their tRNAs. We report here that S . pombe trm8Δ mutants are temperature sensitive primarily due to decay of tRNA ~(Tyr(GUA)) and that spontaneous mutations in the RAT1 ortholog dhp1 ~( + ) restored temperature resistance and prevented tRNA decay, demonstrating conservation of the RTD pathway. We also report for the first time evidence linking the RTD and the general amino acid control (GAAC) pathways, which we show in both S . pombe and S . cerevisiae . In S . pombe trm8Δ mutants, spontaneous GAAC mutations restored temperature resistance and tRNA levels, and the trm8Δ temperature sensitivity was precisely linked to GAAC activation due to tRNA ~(Tyr(GUA)) decay. Similarly, in the well-studied S . cerevisiae trm8Δ trm4Δ RTD mutant, temperature sensitivity was closely linked to GAAC activation due to tRNA ~(Val(AAC)) decay; however, in S . cerevisiae , GAAC mutations increased tRNA loss and exacerbated temperature sensitivity. A similar exacerbated growth defect occurred upon GAAC mutation in S . cerevisiae trm8Δ and other single modification mutants that triggered RTD. Thus, these results demonstrate a conserved GAAC activation coincident with RTD in S . pombe and S . cerevisiae , but an opposite impact of the GAAC response in the two organisms. We speculate that the RTD pathway and its regulation of the GAAC pathway is widely conserved in eukaryotes, extending to other mutants affecting tRNA body modifications.
机译:所有TRNA都是广泛的修饰,修饰缺乏症往往导致芽胺酵母酿酒酵母和人类中的神经学或其他疾病的生长缺陷。在s。酿酒酵母,通过5'-3'外切核酸酶RAT1和XRN1,缺乏几种TRNA主体修饰的任何一种成熟TRNA的TRNA衰减(RTD)。由于TRNA质量控制衰减机制在其他真核生物中未被广泛研究,我们在进化的远处裂变酵母Schizosaccaryces Pombe中研究了TRM8δ突变体,其在G _(46)(m〜(7)g _(46))下缺少7-甲基胍氨酸他们的trnas。我们在这里报告。 POMBETRM8δ突变体是温度敏感的,主要是由于TRNA〜(TYR(GUA))的衰减,并且rat1 ortholog DHP1〜(+)中的自发突变恢复耐温性,防止TRNA衰减,证明RTD途径的保护。我们还报告了链接RTD和一般氨基酸对照(GAAC)途径的第一次证据,我们在S中展示。庞巴和秒。酿酒岛。在s。 POMBETTRM8δ突变体,自发性GaAC突变恢复耐温性和TRNA水平,并且TRM8Δ温度敏感性由于TRNA〜(TYR(GUA))腐烂而精确地连接到GAAC活化。同样,在学习良好的s中。酿酒酵母TRM8ΔTRM4δRTD突变体,温度敏感性由于TRNA〜(VAL(AAC))衰减而与GAAC活化密切相关;但是,在s中。酿酒酵母,GAAC突变增加了TRNA损失和加剧温度敏感性。在S中的GaAC突变时发生了类似的加剧生长缺陷。酿酒酵母TRM8δ和触发RTD的其他单一修饰突变体。因此,这些结果证明了与RD中的RTD重合的保守的GAAC激活。庞巴和秒。酿酒酵母,但对两个生物的Gaac反应的相反影响。我们推测RTD途径及其对GAAC途径的调节在真核生物中广泛保守,延伸到影响TRNA主体修饰的其他突变体。

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