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Aminoacyl-tRNA quality control is required for efficient activation of the TOR pathway regulator Gln3p

机译:氨基酰基-TRNA质量控制是有效激活TOR通道调节器GLN3P

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The aminoacylation status of the cellular tRNA pool regulates both general amino acid control (GAAC) and target of rapamycin (TOR) stress response pathways in yeast. Consequently, fidelity of translation at the level of aminoacyl-tRNA synthesis plays a central role in determining accuracy and sensitivity of stress responses. To investigate effects of translational quality control (QC) on cell physiology under stress conditions, phenotypic microarray analyses were used to identify changes in QC deficient cells. Nitrogen source growth assays showed QC deficient yeast grew differently compared to WT. The QC deficient strain was more tolerant to caffeine treatment than wild type through altered interactions with the TOR and GAAC pathways. Increased caffeine tolerance of the QC deficient strain was consistent with the observation that the activity of Gln3p, a transcription factor controlled by the TOR pathway, is decreased in the QC deficient strain compared to WT. GCN4 translation, which is typically repressed in the absence of nutritional stress, was enhanced in the QC deficient strain through TOR inhibition. QC did not impact cell cycle regulation; however, the chronological lifespan of QC deficient yeast strains decreased compared to wild type, likely due to translational errors and alteration of the TOR-associated regulon. These findings support the idea that changes in translational fidelity provide a mechanism of cellular adaptation by modulating TOR activity. This, in turn, supports a central role for aminoacyl-tRNA synthesis QC in the integrated stress response by maintaining the proper aa-tRNA pools necessary to coordinate the GAAC and TOR.
机译:细胞TRNA池的氨基酰化状态调节酵母中雷帕霉素(GAAC)和雷帕霉素(TOR)应激响应途径的靶标。因此,在氨基酰基-CRNA合成水平下翻译的保真度在确定应激反应的准确性和敏感性方面起着核心作用。为了调查转化质量控制(QC)对胁迫条件下细胞生理学的影响,使用表型微阵列分析来鉴定QC缺陷细胞的变化。与WT相比,氮源生长测定显示QC缺陷酵母不同。通过改变与TOR和GAAC途径的改变的相互作用,QC缺陷的菌株比野生类型更容易耐受咖啡因处理。增加QC缺陷菌株的咖啡因耐受性与观察结果一致的是,与WT相比,QC缺陷株的QC缺陷率下降的GLN3P的活性降低。通过TOR抑制,在QC缺陷的菌株中,GCN4翻译通常在没有营养应激的情况下被压抑。 QC没有影响细胞周期调节;然而,与野生型相比,QC缺陷型酵母菌菌株的时间寿命减少,可能由于转化误差和变形的调节件的改变。这些发现支持通过调节抗体活动来提供平移保真度的变化提供了一种细胞适应机制。反过来,这支持氨基酰基-TRNA合成QC在综合应力响应中的核心作用,通过维持协调GAAC和TOR所需的适当AA-TRNA池。

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