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ABSTRACT The widespread yybP-ykoY riboswitches control bacterial manganese (Mn) homeostasis by activating exporter expression in response to intracellular Mn 2+ levels. The E. coli alx riboswitch distinctively couples Mn 2+ sensing to cytoplasmic alkalinity, but the mechanism is unknown. We show that pH tunes the alx aptamer’s conformational sampling to modulate Mn 2+ sensitivity. Single-molecule FRET reveals that Mn 2+ 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 Mn 2+ -binding state. In vivo reporters indicate that both this loop and the Mn 2+ -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.
Palmer et al. (2026) studied this question.