Projects per year
Abstract
Riboswitches are regulatory elements found in bacterial mRNAs that control downstream gene expression through ligand-induced conformational changes. Here, we used single-molecule FRET to map the conformational landscape of the translational SAM/SAH riboswitch and probe how co-transcriptional ligand-induced conformational changes affect its translation regulation function. Riboswitch folding is highly heterogeneous, suggesting a rugged conformational landscape that allows for sampling of the ligand-bound conformation even in the absence of ligand. The addition of ligand shifts the landscape, favoring the ligand-bound conformation. Mutation studies identified a key structural element, the pseudoknot helix, that is crucial for determining ligand-free conformations and their ligand responsiveness. We also investigated ribosomal binding site accessibility under two scenarios: pre-folding and co-transcriptional folding. The regulatory function of the SAM/SAH riboswitch involves kinetically favoring ligand binding, but co-transcriptional folding reduces this preference with a less compact initial conformation that exposes the Shine-Dalgarno sequence and takes min to redistribute to more compact conformations of the pre-folded riboswitch. Such slow equilibration decreases the effective ligand affinity. Overall, our study provides a deeper understanding of the complex folding process and how the riboswitch adapts its folding pattern in response to ligand, modulates ribosome accessibility and the role of co-transcriptional folding in these processes.
Original language | English |
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Pages (from-to) | 8957–8969 |
Number of pages | 13 |
Journal | Nucleic Acids Research |
Volume | 51 |
Issue number | 17 |
Early online date | 31 Jul 2023 |
DOIs | |
Publication status | Published - 22 Sept 2023 |
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Expanding the Chemical Range of RNA-mediated Catalysis: Structure and Mechanism
Lilley, D. (Investigator)
Engineering and Physical Sciences Research Council
1/04/23 → 31/03/26
Project: Research
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The Nucleic Acid Structure Research Group
Lilley, D. (Investigator)
1/01/16 → 31/12/22
Project: Research