4.7 Article

Computational and experimental characterization of RNA cubic nanoscaffolds

期刊

METHODS
卷 67, 期 2, 页码 256-265

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.ymeth.2013.10.013

关键词

RNA nanotechnology; RNA architectonics; Anisotropic network model; RNA nanostructure dynamics; RNA nanostructure characterization; Nanostructure design; Native PAGE; TGGE

资金

  1. Intramural Research Program of the NIH, National Cancer Institute, Center for Cancer Research
  2. Federal funds
  3. Frederick National Laboratory for Cancer Research, National Institutes of Health [HHSN261200800001E]
  4. NIH [R01GM-079604]

向作者/读者索取更多资源

The fast-developing field of RNA nanotechnology requires the adoption and development of novel and faster computational approaches to modeling and characterization of RNA-based nano-objects. We report the first application of Elastic Network Modeling (ENM), a structure-based dynamics model, to RNA nanotechnology. With the use of an Anisotropic Network Model (ANM), a type of ENM, we characterize the dynamic behavior of non-compact, multi-stranded RNA-based nanocubes that can be used as nano-scale scaffolds carrying different functionalities. Modeling the nanocubes with our tool NanoTiler and exploring the dynamic characteristics of the models with ANM suggested relatively minor but important structural modifications that enhanced the assembly properties and thermodynamic stabilities. In silico and in vitro, we compared nanocubes having different numbers of base pairs per side, showing with both methods that the 10 bp-long helix design leads to more efficient assembly, as predicted computationally. We also explored the impact of different numbers of single-stranded nucleotide stretches at each of the cube corners and showed that cube flexibility simulations help explain the differences in the experimental assembly yields, as well as the measured nanomolecule sizes and melting temperatures. This original work paves the way for detailed computational analysis of the dynamic behavior of artificially designed multi-stranded RNA nanoparticles. (C) 2013 Elsevier Inc. All rights reserved.

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