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酵母中延伸停滞的定量分析及其对基因表达的影响。

Quantification of elongation stalls and impact on gene expression in yeast.

作者信息

Hou Wanfu, Harjono Vince, Harvey Alex T, Subramaniam Arvind Rasi, Zid Brian M

机构信息

Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, CA, USA.

Basic Sciences Division and Computational Biology Section of Public Health Sciences Division, Fred Hutchinson Cancer Center, Seattle, WA, USA.

出版信息

bioRxiv. 2023 Mar 20:2023.03.19.533377. doi: 10.1101/2023.03.19.533377.

Abstract

Ribosomal pauses are a critical part of co-translational events including protein folding and localization. However, extended ribosome pauses can lead to ribosome collisions, resulting in the activation of ribosome rescue pathways and turnover of protein and mRNA. While this relationship has been known, the specific threshold between permissible pausing versus activation of rescue pathways has not been quantified. We have taken a method used to measure elongation time and adapted it for use in to quantify the impact of elongation stalls. We find, in transcripts containing Arg CGA codon repeat-induced stalls, a Hel2-mediated dose-dependent decrease in protein expression and mRNA level and an elongation delay on the order of minutes. In transcripts that contain synonymous substitutions to non-optimal Leu codons, there is a decrease in protein and mRNA levels, as well as similar elongation delay, but this occurs through a non-Hel2-mediated mechanism. Finally, we find that Dhh1 selectively increases protein expression, mRNA level, and elongation rate. This indicates that distinct poorly translated codons in an mRNA will activate different rescue pathways despite similar elongation stall durations. Taken together, these results provide new quantitative mechanistic insight into the surveillance of translation and the roles of Hel2 and Dhh1 in mediating ribosome pausing events.

摘要

核糖体暂停是共翻译事件的关键部分,包括蛋白质折叠和定位。然而,核糖体长时间暂停会导致核糖体碰撞,从而激活核糖体拯救途径以及蛋白质和mRNA的周转。虽然这种关系已为人所知,但允许暂停与激活拯救途径之间的具体阈值尚未量化。我们采用了一种用于测量延伸时间的方法,并对其进行了改进,以用于量化延伸停滞的影响。我们发现,在含有精氨酸CGA密码子重复诱导停滞的转录本中,Hel2介导的蛋白质表达和mRNA水平呈剂量依赖性下降,延伸延迟约为几分钟。在含有同义替换为非最佳亮氨酸密码子的转录本中,蛋白质和mRNA水平下降,以及类似的延伸延迟,但这是通过非Hel2介导的机制发生的。最后,我们发现Dhh1选择性地增加蛋白质表达、mRNA水平和延伸速率。这表明,尽管延伸停滞持续时间相似,但mRNA中不同的翻译困难密码子会激活不同的拯救途径。综上所述,这些结果为翻译监测以及Hel2和Dhh1在介导核糖体暂停事件中的作用提供了新的定量机制见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc74/10055187/5622d3c99736/nihpp-2023.03.19.533377v1-f0001.jpg

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