招募真核起始因子的细胞翻译增强因子。

IF 4.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
RNA Pub Date : 2025-01-22 DOI:10.1261/rna.080310.124
Jiří Koubek, Jaswinder Kaur, Shivani Bhandarkar, Cole J T Lewis, Rachel O Niederer, Andrei Stanciu, Colin Echeverría Aitken, Wendy V Gilbert
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引用次数: 0

摘要

翻译起始是一个高度调控的过程,广泛影响真核生物的基因表达。真核起始因子3 (eIF3)是核糖体募集的典型途径和替代途径的核心参与者。在这里,我们研究了eIF3的直接结合如何导致细胞mrna的不同5'-非翻译区(5'-UTRs)产生的蛋白质输出的巨大和受调节的差异。利用无偏倚的高通量方法确定出芽酵母eIF3对来自4,252个基因的天然5'- utr的亲和力,我们证明eIF3特异性结合含有短非结构化结合基序AMAYAA的5'- utr子集。eIF3结合mrna在生长细胞中具有更高的核糖体密度,并且在一定的应激条件下优先翻译,支持这种相互作用的功能相关性。我们的研究结果揭示了一类新的翻译增强子,并提出了一种机制,通过改变核心起始因子的活性来实现mrna特异性翻译。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cellular translational enhancer elements that recruit eukaryotic initiation factor 3.

Translation initiation is a highly regulated process that broadly affects eukaryotic gene expression. Eukaryotic initiation factor 3 (eIF3) is a central player in canonical and alternative pathways for ribosome recruitment. Here, we have investigated how direct binding of eIF3 contributes to the large and regulated differences in protein output conferred by different 5'-untranslated regions (5' UTRs) of cellular mRNAs. Using an unbiased high-throughput approach to determine the affinity of budding yeast eIF3 for native 5' UTRs from 4252 genes, we demonstrate that eIF3 binds specifically to a subset of 5' UTRs that contain a short unstructured binding motif, AMAYAA. eIF3-binding mRNAs have higher ribosome density in growing cells and are preferentially translated under certain stress conditions, supporting the functional relevance of this interaction. Our results reveal a new class of translational enhancers and suggest a mechanism by which changes in core initiation factor activity enact mRNA-specific translation programs.

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来源期刊
RNA
RNA 生物-生化与分子生物学
CiteScore
8.30
自引率
2.20%
发文量
101
审稿时长
2.6 months
期刊介绍: RNA is a monthly journal which provides rapid publication of significant original research in all areas of RNA structure and function in eukaryotic, prokaryotic, and viral systems. It covers a broad range of subjects in RNA research, including: structural analysis by biochemical or biophysical means; mRNA structure, function and biogenesis; alternative processing: cis-acting elements and trans-acting factors; ribosome structure and function; translational control; RNA catalysis; tRNA structure, function, biogenesis and identity; RNA editing; rRNA structure, function and biogenesis; RNA transport and localization; regulatory RNAs; large and small RNP structure, function and biogenesis; viral RNA metabolism; RNA stability and turnover; in vitro evolution; and RNA chemistry.
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