Journal article
A nucleotide-level coarse-grained model of RNA
- Abstract:
 - We present a new, nucleotide-level model for RNA, oxRNA, based on the coarse-graining methodology recently developed for the oxDNA model of DNA. The model is designed to reproduce structural, mechanical, and thermodynamic properties of RNA, and the coarse-graining level aims to retain the relevant physics for RNA hybridization and the structure of single- and double-stranded RNA. In order to explore its strengths and weaknesses, we test the model in a range of nanotechnological and biological settings. Applications explored include the folding thermodynamics of a pseudoknot, the formation of a kissing loop complex, the structure of a hexagonal RNA nanoring, and the unzipping of a hairpin motif. We argue that the model can be used for efficient simulations of the structure of systems with thousands of base pairs, and for the assembly of systems of up to hundreds of base pairs. The source code implementing the model is released for public use.
 
- Publication status:
 - Published
 
- Peer review status:
 - Peer reviewed
 
Actions
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- Files:
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                        (Preview, Accepted manuscript, pdf, 1.5MB, Terms of use)
 
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- Publisher copy:
 - 10.1063/1.4881424
 
Authors
- Publisher:
 - American Institute of Physics
 - Journal:
 - Journal of Chemical Physics More from this journal
 - Volume:
 - 140
 - Issue:
 - 23
 - Pages:
 - 235102
 - Publication date:
 - 2014-06-01
 - DOI:
 - EISSN:
 - 
                    1089-7690
 - ISSN:
 - 
                    0021-9606
 
- Language:
 - 
                    English
 - Keywords:
 - Pubs id:
 - 
                  pubs:458380
 - UUID:
 - 
                  uuid:42d0351a-1053-4fea-8764-b51a61aff7cd
 - Local pid:
 - 
                    pubs:458380
 - Source identifiers:
 - 
                  458380
 - Deposit date:
 - 
                    2014-05-12
 
Terms of use
- Copyright holder:
 - American Institute of Physics
 - Copyright date:
 - 2014
 - Notes:
 - Copyright 2014 American Institute of Physics. This article may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics. The following article appeared in J. Chem. Phys. 140, 235102 (2014) and may be found at http://scitation.aip.org/content/aip/journal/jcp/140/23/10.1063/1.4881424
 
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