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Analysis of the EIAV Rev-Responsive Element (RRE) Reveals a Conserved RNA Motif Required for High Affinity Rev Binding in Both HIV-1 and EIAV

机译:EIAV Rev响应元件(RRE)的分析显示了HIV-1和EIAV中高亲和力Rev结合所需的保守RNA母题

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摘要

A cis-acting RNA regulatory element, the Rev-responsive element (RRE), has essential roles in replication of lentiviruses, including human immunodeficiency virus (HIV-1) and equine infection anemia virus (EIAV). The RRE binds the viral trans-acting regulatory protein, Rev, to mediate nucleocytoplasmic transport of incompletely spliced mRNAs encoding viral structural genes and genomic RNA. Because of its potential as a clinical target, RRE-Rev interactions have been well studied in HIV-1; however, detailed molecular structures of Rev-RRE complexes in other lentiviruses are still lacking. In this study, we investigate the secondary structure of the EIAV RRE and interrogate regulatory protein-RNA interactions in EIAV Rev-RRE complexes. Computational prediction and detailed chemical probing and footprinting experiments were used to determine the RNA secondary structure of EIAV RRE-1, a 555 nt region that provides RRE function in vivo. Chemical probing experiments confirmed the presence of several predicted loop and stem-loop structures, which are conserved among 140 EIAV sequence variants. Footprinting experiments revealed that Rev binding induces significant structural rearrangement in two conserved domains characterized by stable stem-loop structures. Rev binding region-1 (RBR-1) corresponds to a genetically-defined Rev binding region that overlaps exon 1 of the EIAV rev gene and contains an exonic splicing enhancer (ESE). RBR-2, characterized for the first time in this study, is required for high affinity binding of EIAV Rev to the RRE. RBR-2 contains an RNA structural motif that is also found within the high affinity Rev binding site in HIV-1 (stem-loop IIB), and within or near mapped RRE regions of four additional lentiviruses. The powerful integration of computational and experimental approaches in this study has generated a validated RNA secondary structure for the EIAV RRE and provided provocative evidence that high affinity Rev binding sites of HIV-1 and EIAV share a conserved RNA structural motif. The presence of this motif in phylogenetically divergent lentiviruses suggests that it may play a role in highly conserved interactions that could be targeted in novel anti-lentiviral therapies.
机译:顺式作用的RNA调节元件,即Rev响应元件(RRE),在慢病毒的复制中起重要作用,慢病毒包括人类免疫缺陷病毒(HIV-1)和马感染性贫血病毒(EIAV)。 RRE与病毒反式调节蛋白Rev结合,介导编码病毒结构基因和基因组RNA的不完全剪接的mRNA的核质转运。由于它具有作为临床靶标的潜力,因此已经在HIV-1中对RRE-Rev相互作用进行了深入研究。但是,仍然缺乏其他慢病毒中Rev-RRE复合物的详细分子结构。在这项研究中,我们调查了EIAV RRE的二级结构并询问EIAV Rev-RRE复合物中的调节蛋白-RNA相互作用。计算预测,详细的化学探测和足迹实验用于确定EIAV RRE-1的RNA二级结构,该结构是一个555 nt的区域,可在体内提供RRE功能。化学探测实验证实了一些预测的环和茎-环结构的存在,在140个EIAV序列变体中它们是保守的。足迹实验表明,Rev结合在两个以稳定的茎环结构为特征的保守域中诱导了显着的结构重排。 Rev结合区域1(RBR-1)对应于遗传定义的Rev结合区域,该区域与EIAV rev基因的外显子1重叠,并包含外显子剪接增强子(ESE)。 EIAV Rev与RRE的高亲和力结合需要在本研究中首次表征的RBR-2。 RBR-2包含一个RNA结构基序,该结构基序也位于HIV-1(茎环IIB)的高亲和力Rev结合位点内,以及四种其他慢病毒的RRE区域内或附近。这项研究中计算和实验方法的强大集成为EIAV RRE生成了经过验证的RNA二级结构,并提供了具有煽动性的证据表明HIV-1和EIAV的高亲和力Rev结合位点共享保守的RNA结构基序。在系统发生分歧的慢病毒中该基序的存在表明它可能在高度保守的相互作用中发挥作用,该相互作用可以靶向新型抗慢病毒治疗。

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