Hien Elsa D M, St-Pierre Patrick, Penedo J Carlos, Lafontaine Daniel A
Department of Biology, Faculty of Science, RNA Group, Université de Sherbrooke, Sherbrooke, Quebec J1K 2R1, Canada.
Centre of Biophotonics, Laboratory for Biophysics and Biomolecular Dynamics, SUPA School of Physics and Astronomy, University of St. Andrews, St Andrews, UK; Centre of Biophotonics, Laboratory for Biophysics and Biomolecular Dynamics, Biomedical Sciences Research Complex, School of Biology, University of St. Andrews, St. Andrews, UK.
J Mol Biol. 2024 Nov 15;436(22):168771. doi: 10.1016/j.jmb.2024.168771. Epub 2024 Aug 30.
Transcription elongation is one of the most important processes in the cell. During RNA polymerase elongation, the folding of nascent transcripts plays crucial roles in the genetic decision. Bacterial riboswitches are prime examples of RNA regulators that control gene expression by altering their structure upon metabolite sensing. It was previously revealed that the thiamin pyrophosphate-sensing tbpA riboswitch in Escherichia coli cotranscriptionally adopts three main structures leading to metabolite sensing. Here, using single-molecule FRET, we characterize the transition in which the first nascent structure, a 5' stem-loop, is unfolded during transcription elongation to form the ligand-binding competent structure. Our results suggest that the structural transition occurs in a relatively abrupt manner, i.e., within a 1-2 nucleotide window. Furthermore, a highly dynamic structural exchange is observed, indicating that riboswitch transcripts perform rapid sampling of nascent co-occurring structures. We also observe that the presence of the RNAP stabilizes the 5' stem-loop along the elongation process, consistent with RNAP interacting with the 5' stem-loop. Our study emphasizes the role of early folding stem-loop structures in the cotranscriptional formation of complex RNA molecules involved in genetic regulation.
转录延伸是细胞中最重要的过程之一。在RNA聚合酶延伸过程中,新生转录本的折叠在基因决策中起着关键作用。细菌核糖开关是RNA调节剂的主要例子,它们通过在感知代谢物时改变结构来控制基因表达。此前已揭示,大肠杆菌中硫胺素焦磷酸感应的tbpA核糖开关在共转录过程中会形成三种主要结构,从而实现代谢物感应。在这里,我们使用单分子荧光共振能量转移技术,表征了在转录延伸过程中,第一个新生结构(一个5'茎环)展开以形成配体结合能力结构的转变。我们的结果表明,结构转变以相对突然的方式发生,即在1-2个核苷酸的窗口内。此外,观察到高度动态的结构交换,表明核糖开关转录本对新生同时存在的结构进行快速采样。我们还观察到,RNA聚合酶的存在在延伸过程中稳定了5'茎环,这与RNA聚合酶与5'茎环相互作用一致。我们的研究强调了早期折叠的茎环结构在参与基因调控的复杂RNA分子共转录形成中的作用。