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PNAS Plus: Structural analysis of a class III preQ1 riboswitch reveals an aptamer distant from a ribosome-binding site regulated by fast dynamics

机译:PNAS Plus:对III类preQ1核糖开关的结构分析显示适体与由快速动力学调节的核糖体结合位点相距甚远

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摘要

PreQ1-III riboswitches are newly identified RNA elements that control bacterial genes in response to preQ1 (7-aminomethyl-7-deazaguanine), a precursor to the essential hypermodified tRNA base queuosine. Although numerous riboswitches fold as H-type or HLout-type pseudoknots that integrate ligand-binding and regulatory sequences within a single folded domain, the preQ1-III riboswitch aptamer forms a HLout-type pseudoknot that does not appear to incorporate its ribosome-binding site (RBS). To understand how this unusual organization confers function, we determined the crystal structure of the class III preQ1 riboswitch from Faecalibacterium prausnitzii at 2.75 Å resolution. PreQ1 binds tightly (KD,app 6.5 ± 0.5 nM) between helices P1 and P2 of a three-way helical junction wherein the third helix, P4, projects orthogonally from the ligand-binding pocket, exposing its stem-loop to base pair with the 3′ RBS. Biochemical analysis, computational modeling, and single-molecule FRET imaging demonstrated that preQ1 enhances P4 reorientation toward P1–P2, promoting a partially nested, H-type pseudoknot in which the RBS undergoes rapid docking (kdock ∼0.6 s−1) and undocking (kundock ∼1.1 s−1). Discovery of such dynamic conformational switching provides insight into how a riboswitch with bipartite architecture uses dynamics to modulate expression platform accessibility, thus expanding the known repertoire of gene control strategies used by regulatory RNAs.
机译:PreQ1-III核糖开关是新近鉴定出的RNA元件,可控制细菌基因响应preQ1(7-氨基甲基-7-脱氮鸟嘌呤),preQ1是必需的超修饰tRNA碱基奎索因的前体。尽管许多核糖开关折叠为在单个折叠域内整合配体结合和调节序列的H型或HLout型假结,但preQ1-III核糖开关适体形成了HLout型假结,似乎没有整合其核糖体结合位点(RBS)。为了了解这种异常的组织如何赋予功能,我们以2.75Å的分辨率确定了来自Faecalibacterium prausnitzii的III类preQ1核糖开关的晶体结构。 PreQ1在三向螺旋连接的螺旋P1和P2之间紧密结合(KD,app 6.5±0.5 nM),其中第三个螺旋P4从配体结合袋中正​​交伸出,使茎环与碱基对形成碱基对。 3'RBS。生化分析,计算模型和单分子FRET成像表明preQ1增强了P4向P1-P2的方向,促进了部分嵌套的H型假结,其中RBS经历了快速对接(kdock〜0.6 s -1 < / sup>)和取消对接(kundock约为1.1 s -1 )。这种动态构象转换的发现提供了对具有二分体系结构的核糖开关如何使用动力学来调节表达平台可及性的见解,从而扩展了调节性RNA使用的已知基因控制策略的范围。

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