Conformational heterogeneity in the dGsw purine riboswitch: role of Mg2+ and 2'-dG in aptamer folding.

IF 4.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
RNA Pub Date : 2025-04-16 DOI:10.1261/rna.080274.124
Susmit Narayan Chaudhury, Erdong Ding, Nathan E Jespersen, José N Onuchic, Karissa Y Sanbonmatsu
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Abstract

Recent advancements in RNA structural biology have focused on unraveling the complexities of noncoding mRNA like riboswitches. These cis-acting regulatory regions undergo structural changes in response to specific cellular metabolites, leading to up- or downregulation of downstream genes. The purine riboswitch family regulates prokaryotic genes involved in purine degradation and biosynthesis. They feature an aptamer domain organized around a three-way helical junction, where ligand encapsulation occurs at the junctional core. We chemically probed the aptamer domain of the 2'-dG-sensing purine riboswitch from Mesoplasma florum (dGsw) under various solution conditions to understand how Mg2+ and 2'-dG influence riboswitch folding. We find that 2'-dG binding strongly depends on Mg2+, indicating that Mg2+ is essential for priming dGsw for ligand interactions. We identified a previously undescribed sequence in the 5' tail of dGsw that is complementary to a conserved helix. The inclusion of this region led to intramolecular competition between the alternate helix, Palt, and P1. Mutational analysis confirmed that the 5' flanking end of the aptamer domain forms an alternate helix in the absence of ligand. Molecular dynamics simulations revealed that this alternative conformation is stable. This helix may facilitate the formation of an antiterminator helix by opening the three-way junction surrounding the 2'-dG binding site. Our study establishes the importance of a closed terminal P1 helix conformation for metabolite binding and suggests that the delicate interplay between P1 and Palt fine-tunes downstream gene regulation. These insights offer a new perspective on riboswitch structure and enhance our understanding of the role that a conformational ensemble plays in riboswitch activity and regulation.

dGsw 嘌呤核糖开关的构象异质性:Mg²⁺和 2'-dG 在适配体折叠中的作用。
RNA结构生物学的最新进展集中在揭示非编码mRNA元件(如核开关)的复杂性。这些顺式调控区域在特定细胞代谢物的作用下发生结构变化,导致下游基因上调或下调。嘌呤核糖开关家族调节许多参与嘌呤降解和生物合成的原核基因。它们的特征是适体结构域围绕一个3向螺旋连接点组织,其中配体封装发生在连接点核心。在我们的研究中,我们在不同的溶液条件下化学探测了来自花中浆体(Mesoplasma florum, dGsw)的2'-dG传感嘌呤核糖开关的适体结构域,以了解Mg 2 +和2'-dG如何影响核糖开关折叠。在这里,我们发现高效的2'-dG结合强烈依赖于Mg 2 +,这表明Mg 2 +对于启动dGsw进行配体相互作用是必不可少的。我们在dGsw的5'尾部发现了一个先前描述过的序列,该序列与一个保守的螺旋互补。在结构中包含该区域导致交替螺旋、Palt和P1之间的分子内竞争。突变分析证实,适体结构域的5'侧端在没有配体的情况下形成交替的螺旋结构。分子动力学模拟表明,这种替代构象是稳定的。因此,这个螺旋可以通过打开2'-dG结合位点周围的3向结来促进反终止螺旋的形成。我们的研究进一步确定了封闭的末端P1螺旋构象对代谢物结合的重要性,并表明P1和Palt之间的微妙相互作用可能微调下游基因调控。这些见解为研究核糖体开关结构提供了新的视角,并增强了我们对构象集合在核糖体开关活性和调控中所起作用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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