Yan Zhang, Jingwan Han, Xie Dejian, Wenlong Shen, Ping Li, Jian You Lau, Jingyun Li, Lin Li, Grzegorz Kudla, Zhihu Zhao
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引用次数: 0
摘要
人类免疫缺陷病毒1型(HIV-1) RNA基因组组织在理解其复制周期方面仍然是一个关键的知识缺口。为了解决这个问题,我们开发了HiCapR,这是一种基于补骨脂素交联的RNA接近连接方法,结合库后杂交,能够高分辨率地绘制HIV-1基因组中RNA-RNA相互作用的图谱。该方法确认了典型的结构基序,包括5'-非翻译区(5'-UTR)和Rev Response Element (RRE)的茎环结构,以及5'-UTR内对病毒包装至关重要的二聚化位点。值得注意的是,HiCapR发现了沿基因组分布的新型同源二聚化事件,这表明RNA多聚在剪接调节和选择性封装中发挥了扩展的调节作用。有趣的是,虽然感染细胞表现出广泛的远程RNA相互作用,特别是在5'- utr内,但病毒粒子包装的基因组显示出这种相互作用的显著减少,表明结构从松散组织状态转变为浓缩构象。这种空间重组与二聚化所必需的稳定基因组结构域的保存相吻合,二聚化在整个病毒粒子组装过程中持续存在。这些结构域在同型二聚体界面富集,可能作为结构支架确保基因组包装过程中的保真度。这项工作建立了HiCapR作为探测RNA相互作用组的强大工具,并提供了HIV-1如何利用RNA拓扑异质性来调节其生命周期的机制见解。保守结构域和瞬态相互作用网络的鉴定为抗病毒策略中靶向RNA构象开辟了途径。
Mapping HIV-1 RNA structure, homodimers, long-range interactions and persistent domains by HiCapR.
Human Immunodeficiency Virus type 1 (HIV-1) RNA genome organization remains a critical knowledge gap in understanding its replication cycle. To address this, we developed HiCapR, a psoralen crosslinking-based RNA proximity ligation method coupled with post-library hybridization, enabling high-resolution mapping of RNA-RNA interactions across the HIV-1 genome. This approach confirmed canonical structural motifs, including stem-loop architectures in the 5'-untranslated region (5'-UTR) and Rev Response Element (RRE), as well as dimerization sites within the 5'-UTR critical for viral packaging. Notably, HiCapR identified novel homodimerization events distributed along the genome, suggesting an expanded regulatory role of RNA multimerization in splicing regulation and selective encapsidation. Intriguingly, while infected cells exhibited extensive long-range RNA interactions-particularly within the 5'-UTR-virion-packaged genomes displayed a marked reduction in such interactions, indicative of a structural transition from a loosely organized state to a condensed conformation. This spatial reorganization coincided with the preservation of stable genomic domains essential for dimerization, which persisted throughout virion assembly. These domains, enriched at homodimer interfaces, likely serve as structural scaffolds ensuring fidelity during genome packaging. This work establishes HiCapR as a robust tool for probing RNA interactomes and provides mechanistic insights into how HIV-1 exploits RNA topological heterogeneity to regulate its life cycle. The identification of conserved structural domains and transient interaction networks opens avenues for targeting RNA conformation in antiviral strategies.
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