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mRNA 编码序列的假尿嘧啶化改变翻译。

Pseudouridinylation of mRNA coding sequences alters translation.

机构信息

Department of Chemistry, University of Michigan, Ann Arbor, MI 48109.

Program in Chemical Biology, University of Michigan, Ann Arbor, MI 48109.

出版信息

Proc Natl Acad Sci U S A. 2019 Nov 12;116(46):23068-23074. doi: 10.1073/pnas.1821754116. Epub 2019 Oct 31.

Abstract

Chemical modifications of RNAs have long been established as key modulators of nonprotein-coding RNA structure and function in cells. There is a growing appreciation that messenger RNA (mRNA) sequences responsible for directing protein synthesis can also be posttranscriptionally modified. The enzymatic incorporation of mRNA modifications has many potential outcomes, including changing mRNA stability, protein recruitment, and translation. We tested how one of the most common modifications present in mRNA coding regions, pseudouridine (Ψ), impacts protein synthesis using a fully reconstituted bacterial translation system and human cells. Our work reveals that replacing a single uridine nucleotide with Ψ in an mRNA codon impedes amino acid addition and EF-Tu GTPase activation. A crystal structure of the 70S ribosome with a tRNA bound to a ΨUU codon in the A site supports these findings. We also find that the presence of Ψ can promote the low-level synthesis of multiple peptide products from a single mRNA sequence in the reconstituted translation system as well as human cells, and increases the rate of near-cognate Val-tRNA reacting on a ΨUU codon. The vast majority of Ψ moieties in mRNAs are found in coding regions, and our study suggests that one consequence of the ribosome encountering Ψ can be to modestly alter both translation speed and mRNA decoding.

摘要

RNA 的化学修饰长期以来一直被认为是细胞中非蛋白编码 RNA 结构和功能的关键调节剂。人们越来越认识到,负责指导蛋白质合成的信使 RNA(mRNA)序列也可以在转录后被修饰。mRNA 修饰的酶促掺入有许多潜在的结果,包括改变 mRNA 的稳定性、蛋白质募集和翻译。我们使用完全重组的细菌翻译系统和人类细胞测试了 mRNA 编码区中最常见的修饰之一假尿嘧啶核苷(Ψ)如何影响蛋白质合成。我们的工作表明,在 mRNA 密码子中用 Ψ 替换单个尿嘧啶核苷酸会阻碍氨基酸的添加和 EF-Tu GTP 酶的激活。与 A 位结合的 tRNA 的 70S 核糖体的晶体结构支持了这些发现。我们还发现,Ψ 的存在可以促进在重组翻译系统以及人类细胞中从单个 mRNA 序列低水平合成多种肽产物,并增加 ΨUU 密码子上近乎密码子 Val-tRNA 的反应速率。在 mRNAs 中绝大多数 Ψ 部分存在于编码区,我们的研究表明,核糖体遇到 Ψ 的一个后果可能是适度改变翻译速度和 mRNA 解码。

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