Structural and dynamic mechanisms for coupled folding and tRNA recognition of a translational T-box riboswitch.
Xiaolin NiuZhonghe XuYufan ZhangXiao-Bing ZuoChunlai ChenXian-Yang FangPublished in: Nature communications (2023)
T-box riboswitches are unique riboregulators where gene regulation is mediated through interactions between two highly structured RNAs. Despite extensive structural insights, how RNA-RNA interactions drive the folding and structural transitions of T-box to achieve functional conformations remains unclear. Here, by combining SAXS, single-molecule FRET and computational modeling, we elaborate the folding energy landscape of a translational T-box aptamer consisting of stems I, II and IIA/B, which Mg 2+ -induced global folding and tRNA binding are cooperatively coupled. smFRET measurements reveal that high Mg 2+ stabilizes IIA/B and its stacking on II, which drives the pre-docking of I and II into a competent conformation, subsequent tRNA binding promotes docking of I and II to form a high-affinity tRNA binding groove, of which the essentiality of IIA/B and S-turn in II is substantiated with mutational analysis. We highlight a delicate balance among Mg 2+ , the intra- and intermolecular RNA-RNA interactions in modulating RNA folding and function.
Keyphrases
- single molecule
- molecular dynamics simulations
- living cells
- binding protein
- transcription factor
- atomic force microscopy
- nucleic acid
- molecular dynamics
- dna binding
- oxidative stress
- sensitive detection
- dna methylation
- signaling pathway
- single cell
- gene expression
- gold nanoparticles
- genome wide
- diabetic rats
- fluorescent probe
- endothelial cells
- high glucose
- small molecule
- quantum dots
- crystal structure