The widespread yybP-ykoY riboswitches control bacterial manganese (Mn) homeostasis by activating exporter expression in response to intracellular Mn2+ levels. The Escherichia coli alx riboswitch distinctively couples Mn2+ sensing to cytoplasmic alkalinity, but the mechanism is unknown. We show that pH tunes the alx aptamer's conformational sampling to modulate Mn2+ sensitivity. Single-molecule FRET reveals that Mn2+ stabilizes a docked three-way-junction conformation, and alkaline pH shifts this equilibrium to sensitize metal-dependent folding. Molecular dynamics simulations identify a loop whose low-pH-induced base pairing perturbs the adjacent helix, predicted to allosterically disrupt the Mn2+-binding state. In vivo reporters indicate that both this loop and the Mn2+-binding core are required for optimal pH-dependent translational activation: replacing the core with the non-pH-responsive mntP sequence abolishes activation. These results define how RNA allosterically integrates orthogonal metal and proton cues to enable combinatorial environmental sensing during alkaline stress.
pH-dependent allosteric remodeling of a bacterial riboswitch couples alkaline activation to metal sensing / Palmer, D., Chauvier, A., Silva, T.F.D., Ontiveros, A., Bussi, G., Walter, N.G., Mishanina, T.V.. - In: NUCLEIC ACIDS RESEARCH. - ISSN 0305-1048. - 54:18(2026). [10.1093/nar/gkag905]
pH-dependent allosteric remodeling of a bacterial riboswitch couples alkaline activation to metal sensing
Bussi, Giovanni;
2026-01-01
Abstract
The widespread yybP-ykoY riboswitches control bacterial manganese (Mn) homeostasis by activating exporter expression in response to intracellular Mn2+ levels. The Escherichia coli alx riboswitch distinctively couples Mn2+ sensing to cytoplasmic alkalinity, but the mechanism is unknown. We show that pH tunes the alx aptamer's conformational sampling to modulate Mn2+ sensitivity. Single-molecule FRET reveals that Mn2+ stabilizes a docked three-way-junction conformation, and alkaline pH shifts this equilibrium to sensitize metal-dependent folding. Molecular dynamics simulations identify a loop whose low-pH-induced base pairing perturbs the adjacent helix, predicted to allosterically disrupt the Mn2+-binding state. In vivo reporters indicate that both this loop and the Mn2+-binding core are required for optimal pH-dependent translational activation: replacing the core with the non-pH-responsive mntP sequence abolishes activation. These results define how RNA allosterically integrates orthogonal metal and proton cues to enable combinatorial environmental sensing during alkaline stress.| File | Dimensione | Formato | |
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