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The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation

The emergence of SARS-CoV-2, which is responsible for the COVID-19 pandemic, has highlighted the need for rapid characterization of viral mechanisms associated with cellular pathogenesis. Viral UTRs represent conserved genomic elements that contribute to such mechanisms. Structural details of most C...

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Autores principales: Mackeown, Matthew, Kung, Yu-An, Davila-Calderon, Jesse, Ford, William P., Luo, Le, Henry, Barrington, Li, Mei-Ling, Brewer, Gary, Shih, Shin-Ru, Tolbert, Blanton S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9930382/
https://www.ncbi.nlm.nih.gov/pubmed/36805339
http://dx.doi.org/10.1016/j.jbc.2023.103028
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author Mackeown, Matthew
Kung, Yu-An
Davila-Calderon, Jesse
Ford, William P.
Luo, Le
Henry, Barrington
Li, Mei-Ling
Brewer, Gary
Shih, Shin-Ru
Tolbert, Blanton S.
author_facet Mackeown, Matthew
Kung, Yu-An
Davila-Calderon, Jesse
Ford, William P.
Luo, Le
Henry, Barrington
Li, Mei-Ling
Brewer, Gary
Shih, Shin-Ru
Tolbert, Blanton S.
author_sort Mackeown, Matthew
collection PubMed
description The emergence of SARS-CoV-2, which is responsible for the COVID-19 pandemic, has highlighted the need for rapid characterization of viral mechanisms associated with cellular pathogenesis. Viral UTRs represent conserved genomic elements that contribute to such mechanisms. Structural details of most CoV UTRs are not available, however. Experimental approaches are needed to allow for the facile generation of high-quality viral RNA tertiary structural models, which can facilitate comparative mechanistic efforts. By integrating experimental and computational techniques, we herein report the efficient characterization of conserved RNA structures within the 5′UTR of the HCoV-OC43 genome, a lab-tractable model coronavirus. We provide evidence that the 5′UTR folds into a structure with well-defined stem-loops (SLs) as determined by chemical probing and direct detection of hydrogen bonds by NMR. We combine experimental base-pair restraints with global structural information from SAXS to generate a 3D model that reveals that SL1-4 adopts a topologically constrained structure wherein SLs 3 and 4 coaxially stack. Coaxial stacking is mediated by short linker nucleotides and allows SLs 1 to 2 to sample different cojoint orientations by pivoting about the SL3,4 helical axis. To evaluate the functional relevance of the SL3,4 coaxial helix, we engineered luciferase reporter constructs harboring the HCoV-OC43 5′UTR with mutations designed to abrogate coaxial stacking. Our results reveal that the SL3,4 helix intrinsically represses translation efficiency since the destabilizing mutations correlate with increased luciferase expression relative to wildtype without affecting reporter mRNA levels, thus highlighting how the 5′UTR structure contributes to the viral mechanism.
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spelling pubmed-99303822023-02-15 The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation Mackeown, Matthew Kung, Yu-An Davila-Calderon, Jesse Ford, William P. Luo, Le Henry, Barrington Li, Mei-Ling Brewer, Gary Shih, Shin-Ru Tolbert, Blanton S. J Biol Chem Research Article Collection: Virology The emergence of SARS-CoV-2, which is responsible for the COVID-19 pandemic, has highlighted the need for rapid characterization of viral mechanisms associated with cellular pathogenesis. Viral UTRs represent conserved genomic elements that contribute to such mechanisms. Structural details of most CoV UTRs are not available, however. Experimental approaches are needed to allow for the facile generation of high-quality viral RNA tertiary structural models, which can facilitate comparative mechanistic efforts. By integrating experimental and computational techniques, we herein report the efficient characterization of conserved RNA structures within the 5′UTR of the HCoV-OC43 genome, a lab-tractable model coronavirus. We provide evidence that the 5′UTR folds into a structure with well-defined stem-loops (SLs) as determined by chemical probing and direct detection of hydrogen bonds by NMR. We combine experimental base-pair restraints with global structural information from SAXS to generate a 3D model that reveals that SL1-4 adopts a topologically constrained structure wherein SLs 3 and 4 coaxially stack. Coaxial stacking is mediated by short linker nucleotides and allows SLs 1 to 2 to sample different cojoint orientations by pivoting about the SL3,4 helical axis. To evaluate the functional relevance of the SL3,4 coaxial helix, we engineered luciferase reporter constructs harboring the HCoV-OC43 5′UTR with mutations designed to abrogate coaxial stacking. Our results reveal that the SL3,4 helix intrinsically represses translation efficiency since the destabilizing mutations correlate with increased luciferase expression relative to wildtype without affecting reporter mRNA levels, thus highlighting how the 5′UTR structure contributes to the viral mechanism. American Society for Biochemistry and Molecular Biology 2023-02-15 /pmc/articles/PMC9930382/ /pubmed/36805339 http://dx.doi.org/10.1016/j.jbc.2023.103028 Text en © 2023 The Authors
spellingShingle Research Article Collection: Virology
Mackeown, Matthew
Kung, Yu-An
Davila-Calderon, Jesse
Ford, William P.
Luo, Le
Henry, Barrington
Li, Mei-Ling
Brewer, Gary
Shih, Shin-Ru
Tolbert, Blanton S.
The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title_full The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title_fullStr The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title_full_unstemmed The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title_short The 5′UTR of HCoV-OC43 adopts a topologically constrained structure to intrinsically repress translation
title_sort 5′utr of hcov-oc43 adopts a topologically constrained structure to intrinsically repress translation
topic Research Article Collection: Virology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9930382/
https://www.ncbi.nlm.nih.gov/pubmed/36805339
http://dx.doi.org/10.1016/j.jbc.2023.103028
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