A Cascade of Conformational Switches in SARS-CoV-2 Frameshifting: Coregulation by Upstream and Downstream Elements.

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemistry Biochemistry Pub Date : 2025-02-05 DOI:10.1021/acs.biochem.4c00641
Samuel Lee, Shuting Yan, Abhishek Dey, Alain Laederach, Tamar Schlick
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Abstract

Targeting ribosomal frameshifting has emerged as a potential therapeutic intervention strategy against COVID-19. In this process, a -1 shift in the ribosomal reading frame encodes alternative viral proteins. Any interference with this process profoundly affects viral replication and propagation. For SARS-CoV-2, two RNA sites associated with ribosomal frameshifting are positioned on the 5' and 3' of the frameshifting residues. Although much attention has been focused on the 3' frameshift element (FSE), the 5' stem-loop (attenuator hairpin, AH) can play a role. Yet the relationship between the two regions is unknown. In addition, multiple folds of the FSE and FSE-containing RNA regions have been discovered. To gain more insight into these RNA folds in the larger sequence context that includes AH, we apply our graph-theory-based modeling tools to represent RNA secondary structures, "RAG" (RNA-As-Graphs), to generate conformational landscapes that suggest length-dependent conformational distributions. We show that the AH region can coexist as a stem-loop with main and alternative 3-stem pseudoknots of the FSE (dual graphs 3_6 and 3_3 in our notation) but that an alternative stem 1 (AS1) can disrupt the FSE pseudoknots and trigger other folds. A critical length for AS1 of 10-bp regulates key folding transitions. Together with designed mutants and available experimental data, we present a sequential view of length-dependent folds during frameshifting and suggest their mechanistic roles. These structural and mutational insights into both ends of the FSE advance our understanding of the SARS-CoV-2 frameshifting mechanism by suggesting how alternative folds play a role in frameshifting and defining potential therapeutic intervention techniques that target specific folds.

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以核糖体框架转换为靶点已成为针对 COVID-19 的一种潜在治疗干预策略。在这一过程中,核糖体阅读框的-1位移编码替代病毒蛋白。对这一过程的任何干扰都会严重影响病毒的复制和传播。对于 SARS-CoV-2 而言,与核糖体框架转换相关的两个 RNA 位点分别位于框架转换残基的 5'和 3'。尽管人们的注意力主要集中在 3'移帧元件(FSE)上,但 5'茎环(衰减器发夹,AH)也能发挥作用。然而,这两个区域之间的关系尚不清楚。此外,还发现了 FSE 和含 FSE RNA 区域的多种折叠。为了更深入地了解包括 AH 在内的更大序列背景下的这些 RNA 折叠,我们应用基于图论的建模工具 "RAG"(RNA-As-Graphs)来表示 RNA 二级结构,生成构象景观,提出了长度依赖性构象分布。我们的研究表明,AH 区域可以作为一个茎环与 FSE 的主茎和替代 3 茎伪节点(双图 3_6 和 3_3)共存,但替代茎 1(AS1)会破坏 FSE 伪节点并引发其他折叠。AS1的临界长度为10-bp,可调节关键的折叠转换。结合设计的突变体和现有的实验数据,我们提出了框架转换过程中长度依赖性折叠的顺序观点,并提出了它们的机理作用。这些对 FSE 两端的结构和突变的深入研究,通过提示替代折叠如何在框架转换中发挥作用,以及定义针对特定折叠的潜在治疗干预技术,增进了我们对 SARS-CoV-2 框架转换机制的了解。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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Pathway Specific Unbinding Free Energy Profiles of Ritonavir Dissociation from HIV-1 Protease. Conversion of Inactive Non-Pro1 Tautomerase Superfamily Members into Active Tautomerases: Analysis of the Pro1 Mutants. A Cascade of Conformational Switches in SARS-CoV-2 Frameshifting: Coregulation by Upstream and Downstream Elements. Frataxin Traps Low Abundance Quaternary Structure to Stimulate Human Fe-S Cluster Biosynthesis. The Huntingtin Transport Complex.
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