EMD-13636

Single-particle
5.71 Å
EMD-13636 Deposition: 27/09/2021
Map released: 05/10/2022
Last modified: 17/07/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-13636

RNA origami 5-helix tile

EMD-13636

Single-particle
5.71 Å
EMD-13636 Deposition: 27/09/2021
Map released: 05/10/2022
Last modified: 17/07/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: synthetic construct
Sample: 5 helix tile B
Fitted models: 7pts (Avg. Q-score: 0.213)

Deposition Authors: McRae EKS , Bogglid A, Boesen T , Andersen ES
Structure, folding and flexibility of co-transcriptional RNA origami.
McRae EKS , Rasmussen HO , Liu J , Boggild A , Nguyen MTA , Sampedro Vallina N, Boesen T , Pedersen JS , Ren G , Geary C , Andersen ES
(2023) Nat Nanotechnol , 18 , 808 - 817
PUBMED: 36849548
DOI: doi:10.1038/s41565-023-01321-6
ISSN: 1748-3395
Abstract:
RNA origami is a method for designing RNA nanostructures that can self-assemble through co-transcriptional folding with applications in nanomedicine and synthetic biology. However, to advance the method further, an improved understanding of RNA structural properties and folding principles is required. Here we use cryogenic electron microscopy to study RNA origami sheets and bundles at sub-nanometre resolution revealing structural parameters of kissing-loop and crossover motifs, which are used to improve designs. In RNA bundle designs, we discover a kinetic folding trap that forms during folding and is only released after 10 h. Exploration of the conformational landscape of several RNA designs reveal the flexibility of helices and structural motifs. Finally, sheets and bundles are combined to construct a multidomain satellite shape, which is characterized by individual-particle cryo-electron tomography to reveal the domain flexibility. Together, the study provides a structural basis for future improvements to the design cycle of genetically encoded RNA nanodevices.