The Evolution of G-quadruplex Structure in mRNA Untranslated Region.

IF 1.7 4区 生物学 Q4 EVOLUTIONARY BIOLOGY Evolutionary Bioinformatics Pub Date : 2021-07-21 eCollection Date: 2021-01-01 DOI:10.1177/11769343211035140
Ting Qi, Yuming Xu, Tong Zhou, Wanjun Gu
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引用次数: 2

Abstract

The RNA G-quadruplex (rG4) is a kind of non-canonical high-order secondary structure with important biological functions and is enriched in untranslated regions (UTRs) of protein-coding genes. However, how rG4 structures evolve is largely unknown. Here, we systematically investigated the evolution of RNA sequences around UTR rG4 structures in 5 eukaryotic organisms. We found universal selection on UTR sequences, which facilitated rG4 formation in all the organisms that we analyzed. While G-rich sequences were preferred in the rG4 structural region, C-rich sequences were selectively not preferred. The selective pressure acting on rG4 structures in the UTRs of genes with higher G content was significantly smaller. Furthermore, we found that rG4 structures experienced smaller evolutionary selection near the translation initiation region in the 5' UTR, near the polyadenylation signals in the 3' UTR, and in regions flanking the miRNA targets in the 3' UTR. These results suggest universal selection for rG4 formation in the UTRs of eukaryotic genomes and the selection may be related to the biological functions of rG4s.

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mRNA非翻译区g -四重体结构的演化。
RNA g -四重体(rG4)是一类具有重要生物学功能的非规范高阶二级结构,富集于蛋白质编码基因的非翻译区(UTRs)。然而,rG4结构如何进化在很大程度上是未知的。在此,我们系统地研究了5种真核生物中UTR rG4结构周围RNA序列的进化。我们发现了UTR序列的普遍选择,这促进了rG4在我们分析的所有生物中的形成。在rG4结构区富g序列优先,富c序列选择性不优先。G含量高的基因UTRs中作用于rG4结构的选择压力明显较小。此外,我们发现rG4结构在5' UTR的翻译起始区附近、3' UTR的聚腺苷化信号附近以及3' UTR中miRNA靶标侧的区域经历了较小的进化选择。这些结果表明,rG4在真核生物基因组的utr中形成具有普遍的选择性,这种选择可能与rG4的生物学功能有关。
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来源期刊
Evolutionary Bioinformatics
Evolutionary Bioinformatics 生物-进化生物学
CiteScore
4.20
自引率
0.00%
发文量
25
审稿时长
12 months
期刊介绍: Evolutionary Bioinformatics is an open access, peer reviewed international journal focusing on evolutionary bioinformatics. The journal aims to support understanding of organismal form and function through use of molecular, genetic, genomic and proteomic data by giving due consideration to its evolutionary context.
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