A coarse-grained model with implicit salt for RNAs: predicting 3D structure, stability and salt effect
arXiv:1409.0305 · doi:10.1063/1.4894752
Abstract
To bridge the gap between the sequences and 3-dimensional (3D) structures of RNAs, some computational models have been proposed for predicting RNA 3D structures. However, the existed models seldom consider the conditions departing from the room/body temperature and high salt (1M NaCl), and thus generally hardly predict the thermodynamics and salt effect. In this study, we propose a coarse-grained model with implicit salt for RNAs to predict 3D structures, stability and salt effect. Combined with Monte Carlo simulated annealing algorithm and a coarse-grained force field, the model folds 46 tested RNAs (less than or equal to 45 nt) including pseudoknots into their native-like structures from their sequences, with an overall mean RMSD of 3.5 Å and an overall minimum RMSD of 1.9 Å from the experimental structures. For 30 RNA hairpins, the present model also gives the reliable predictions for the stability and salt effect with the mean deviation ~ 1.0 degrees Celsius of melting temperatures, as compared with the extensive experimental data. In addition, the model could provide the ensemble of possible 3D structures for a short RNA at a given temperature/salt condition.
47 pages, 8 figures. Journal of Chemical Physics, in press
References in corpus (5)
- A nucleotide-level coarse-grained model of RNA
- A Coarse-Grained Model for Predicting RNA Folding Thermodynamics
- Theory of competitive counterion adsorption on flexible polyelectrolytes : Divalent salts
- A coarse-grained model with implicit salt for RNAs: predicting 3D structure, stability and salt effect
- RNA structure prediction: progress and perspective
Cited by in corpus (4)
- Multivalent ion-mediated nucleic acid helix-helix interactions: RNA versus DNA
- A coarse-grained model with implicit salt for RNAs: predicting 3D structure, stability and salt effect
- Flexibility of short DNA helices with finite-length effect: from base pairs to tens of base pairs
- Potential of mean force between like-charged nanoparticles: Many-body effect