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Updated: Jan 22, 2026

Preparation of Multifunctional Silk-Based Microcapsules Loaded with DNA Plasmids Encoding RNA Aptamers and Riboswitches
Published on: October 8, 2021
Modeling Translational Riboswitches: The Impact of SAM Concentration on the Folding of the SAM-II Riboswitch
1Biocomplexity for Research and ConsultingSuite 204, third District, New Heliopolis City, Cairo 11757, Egypt.
Abstract:
Several mechanistic (thermodynamic) models were developed for folding of the SAM-II riboswitch as a function of SAM and Mg2+ ion concentrations. For each model, the parameters were determined from experimental (apparent) binding data, based on the underlying assumptions of the model. The predicted titration curves computed from the different models were compared with the experimental observation of the fraction of the RNA forming a pseudoknot at specific concentrations of the ligands. Strikingly, only one of the six models correctly predicts the experimental findings, unveiling the dominant mechanism of the riboswitch function. More interestingly, the latter mechanism is found to be the most efficient compared to the other possible mechanisms. The study sheds light on the cognate ligand conformational capture mechanism of the SAM-II riboswitch in the presence of specific concentrations of magnesium ions. The presented analytical and thermodynamic framework, as well as the inferred equilibrium constants, provides foundations for making accurate quantitative predictions of the SAM-II riboswitch ensemble populations as a function of SAM and magnesium concentrations. The mechanistic linked equilibria model can be generalized to describe other thermodynamically driven riboswitches and hence facilitate identifying RNA intermediates that can be leveraged for small-molecule drug design.
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