Department of Biology, Faculty of Science, RNA Group, Université de Sherbrooke, Sherbrooke, Quebec, Canada J1K 2R1.
Department of Biology, Faculty of Science, RNA Group, Université de Sherbrooke, Sherbrooke, Quebec, Canada J1K 2R1
RNA. 2024 Nov 18;30(12):1660-1673. doi: 10.1261/rna.080074.124.
Riboswitches are metabolite-binding RNA regulators that modulate gene expression at the levels of transcription and translation. One of the hallmarks of riboswitch regulation is that they undergo structural changes upon metabolite binding. While a lot of effort has been put to characterize how the metabolite is recognized by the riboswitch, there is still relatively little information regarding how ligand sensing is performed within a transcriptional context. Here, we study the ligand-dependent cotranscriptional folding of the FMN-sensing riboswitch of Using RNase H assays to study nascent riboswitch transcripts, DNA probes targeting the P1 and sequestering stems indicate that FMN binding leads to the protection of these regions from RNase H cleavage, consistent with the riboswitch inhibiting translation initiation when bound to FMN. Our results show that ligand sensing is strongly affected by the position of elongating RNA polymerase, which is defining an FMN-binding transcriptional window that is bordered in its 3' extremity by a transcriptional pause site. Also, using successively overlapping DNA probes targeting a subdomain of the riboswitch, our data suggest the presence of a previously unsuspected helical region involving the 3' strand of the P1 stem. Our results show that this helical region is conserved across bacterial species, thus suggesting that this predicted structure, the anti*-P1 stem, is involved in the FMN-free conformation of the riboswitch. Overall, our study further demonstrates that intricate folding strategies may be used by riboswitches to perform metabolite sensing during the transcriptional process.
Riboswitches 是一类代谢物结合的 RNA 调控因子,可在转录和翻译水平上调节基因表达。Riboswitch 调控的一个特点是,它们在结合代谢物后会发生结构变化。虽然人们已经投入大量精力来描述代谢物如何被 riboswitch 识别,但关于配体在转录背景下如何被感知的信息仍然相对较少。在这里,我们研究了 FMN 感应 riboswitch 的配体依赖性共转录折叠。通过 RNase H 测定来研究新生的 riboswitch 转录物,针对 P1 和隔离茎的 DNA 探针表明,FMN 结合导致这些区域免受 RNase H 切割,这与 FMN 结合时抑制翻译起始一致。我们的结果表明,配体感应受到延伸 RNA 聚合酶位置的强烈影响,该聚合酶定义了一个 FMN 结合的转录窗口,其 3' 末端由转录暂停位点界定。此外,使用针对 riboswitch 亚结构域的连续重叠 DNA 探针,我们的数据表明存在一个以前未被怀疑的螺旋区域,涉及 P1 茎的 3' 链。我们的结果表明,该螺旋区域在细菌物种中是保守的,因此表明该预测结构,即反*-P1 茎,参与了 riboswitch 的 FMN 自由构象。总的来说,我们的研究进一步表明,复杂的折叠策略可能被 riboswitch 用于在转录过程中进行代谢物感应。