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Optimization of Codon Translation Rates via tRNA Modifications Maintains Proteome Integrity

机译:通过tRNA修饰优化密码子翻译速率可保持蛋白质组完整性。

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摘要

Proteins begin to fold as they emerge from translating ribosomes. The kinetics of ribosome transit along a given mRNA can influence nascent chain folding, but the extent to which individual codon translation rates impact proteome integrity remains unknown. Here, we show that slower decoding of discrete codons elicits widespread protein aggregation in vivo. Using ribosome profiling, we find that loss of anticodon wobble uridine (U-34) modifications in a subset of tRNAs leads to ribosome pausing at their cognate codons in S. cerevisiae and C. elegans. Cells lacking U-34 modifications exhibit gene expression hallmarks of proteotoxic stress, accumulate aggregates of endogenous proteins, and are severely compromised in clearing stress-induced protein aggregates. Overexpression of hypomodified tRNAs alleviates ribosome pausing, concomitantly restoring protein homeostasis. Our findings demonstrate that modified U-34 is an evolutionarily conserved accelerator of decoding and reveal an unanticipated role for tRNA modifications in maintaining proteome integrity.
机译:当蛋白质从翻译的核糖体中出来时,它们开始折叠。沿给定mRNA的核糖体转运动力学可以影响新生链折叠,但是单个密码子翻译速率影响蛋白质组完整性的程度仍然未知。在这里,我们表明,较慢的离散密码子解码会引起体内广泛的蛋白质聚集。使用核糖体谱分析,我们发现tRNA子集中的反密码子摆动尿苷(U-34)修饰丢失会导致核糖体在酿酒酵母和秀丽隐杆线虫的同源密码子处暂停。缺乏U-34修饰的细胞表现出蛋白毒性应激的基因表达特征,积累内源蛋白质的聚集体,并且在清除应激诱导的蛋白质聚集体时受到严重损害。过度修饰的tRNA的表达减轻了核糖体的停顿,同时恢复了蛋白质稳态。我们的发现表明,修饰的U-34是进化上保守的解码加速器,并揭示了tRNA修饰在维持蛋白质组完整性方面的未曾预料的作用。

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