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RNA 结构可塑性在调节 HIV-1 基因组包装和翻译中的作用。

Role of RNA structural plasticity in modulating HIV-1 genome packaging and translation.

机构信息

Department of Chemistry and Biochemistry, University of Maryland, Baltimore County, MD 21250.

Department of Oncology, McArdle Laboratory for Cancer Research, University of Wisconsin-Madison, Madison, WI 53705.

出版信息

Proc Natl Acad Sci U S A. 2024 Aug 13;121(33):e2407400121. doi: 10.1073/pnas.2407400121. Epub 2024 Aug 7.

Abstract

HIV-1 transcript function is controlled in part by twinned transcriptional start site usage, where 5' capped RNAs beginning with a single guanosine (1G) are preferentially packaged into progeny virions as genomic RNA (gRNA) whereas those beginning with three sequential guanosines (3G) are retained in cells as mRNAs. In 3G transcripts, one of the additional guanosines base pairs with a cytosine located within a conserved 5' polyA element, resulting in formation of an extended 5' polyA structure as opposed to the hairpin structure formed in 1G RNAs. To understand how this remodeling influences overall transcript function, we applied in vitro biophysical studies with in-cell genome packaging and competitive translation assays to native and 5' polyA mutant transcripts generated with promoters that differentially produce 1G or 3G RNAs. We identified mutations that stabilize the 5' polyA hairpin structure in 3G RNAs, which promote RNA dimerization and Gag binding without sequestering the 5' cap. None of these 3G transcripts were competitively packaged, confirming that cap exposure is a dominant negative determinant of viral genome packaging. For all RNAs examined, conformations that favored 5' cap exposure were both poorly packaged and more efficiently translated than those that favored 5' cap sequestration. We propose that structural plasticity of 5' polyA and other conserved RNA elements place the 5' leader on a thermodynamic tipping point for low-energetic (~3 kcal/mol) control of global transcript structure and function.

摘要

HIV-1 转录本的功能部分受到孪生转录起始位点使用的控制,其中以单个鸟嘌呤(1G)起始的 5' 加帽 RNA 优先包装为基因组 RNA(gRNA),而以三个连续鸟嘌呤(3G)起始的 RNA 则作为 mRNA 保留在细胞中。在 3G 转录本中,额外的一个鸟嘌呤与位于保守的 5' 多聚 A 元件内的胞嘧啶碱基配对,导致形成延伸的 5' 多聚 A 结构,而不是在 1G RNA 中形成的发夹结构。为了了解这种重塑如何影响整体转录本功能,我们应用了体外生物物理研究,包括在细胞内基因组包装和竞争翻译测定中,使用产生 1G 或 3G RNA 的不同启动子生成的天然和 5' 多聚 A 突变转录本。我们鉴定了稳定 3G RNA 中 5' 多聚 A 发夹结构的突变,这些突变促进 RNA 二聚化和 Gag 结合,而不会隔离 5' 帽。这些 3G 转录本都没有进行竞争包装,这证实了帽暴露是病毒基因组包装的主要负决定因素。对于所有检查的 RNA,有利于 5' 帽暴露的构象既包装不良,又比有利于 5' 帽隔离的构象更有效地翻译。我们提出,5' 多聚 A 和其他保守 RNA 元件的结构可塑性使 5' 引导区处于低能量(~3 千卡/摩尔)控制全局转录本结构和功能的热力学临界点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/062d/11331132/29c9449a1001/pnas.2407400121fig01.jpg

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