Metal ions, particularly magnesium ions (Mg), play a role in stabilizing the tertiary structures of RNA molecules. Theoretical models and experimental techniques show that metal ions can change RNA dynamics and how it transitions through different stages of folding. However, the specific ways in which metal ions contribute to the formation and stabilization of RNA's tertiary structure are not fully understood at the atomic level. Here, we combined oscillating excess chemical potential Grand Canonical Monte Carlo (GCMC) and metadynamics to bias toward the sampling of unfolded states using reaction coordinates generated by machine learning allowing for examination of Mg-RNA interactions that contribute to stabilizing folded states of the pseudoknot found in the Twister ribozyme. GCMC is used to sample diverse ion distributions around the RNA with deep learning applied to iteratively generate system-specific reaction coordinates to maximize conformational sampling during metadynamics simulations. Results from 6 μs simulations performed on 9 individual systems indicate that Mg ions play a crucial role in stabilizing the three-dimensional (3D) structure of the RNA by stabilizing specific interactions of phosphate groups or phosphate groups and bases of neighboring nucleotides. While many phosphates are accessible to interactions with Mg, it is observed that multiple, specific interactions are required to sample conformations close to the folded state; coordination of Mg at individual specific sites facilitates sampling of folded conformations though unfolding ultimately occurs. It is only when multiple specific interactions occur, including the presence of specific inner-shell cation interactions linking two nucleotides, that conformations close to the folded state are stable. While many of the identified Mg interactions are observed in the X-ray crystal structure of Twister, the present study suggests two new Mg ion sites in the Twister ribozyme that contribute to stabilization. In addition, specific interactions with Mg are observed that destabilize the local RNA structure, a process that may facilitate the folding of RNA into its correct structure.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249389PMC
http://dx.doi.org/10.1021/acsomega.3c00931DOI Listing

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