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Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme

Flaviviruses are small, capped positive sense RNA viruses that replicate in the cytoplasm of infected cells. Dengue virus and other related flaviviruses have evolved RNA capping enzymes to form the viral RNA cap structure that protects the viral genome and directs efficient viral polyprotein transla...

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Autores principales: Henderson, Brittney R., Saeedi, Bejan J., Campagnola, Grace, Geiss, Brian J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3192115/
https://www.ncbi.nlm.nih.gov/pubmed/22022449
http://dx.doi.org/10.1371/journal.pone.0025795
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author Henderson, Brittney R.
Saeedi, Bejan J.
Campagnola, Grace
Geiss, Brian J.
author_facet Henderson, Brittney R.
Saeedi, Bejan J.
Campagnola, Grace
Geiss, Brian J.
author_sort Henderson, Brittney R.
collection PubMed
description Flaviviruses are small, capped positive sense RNA viruses that replicate in the cytoplasm of infected cells. Dengue virus and other related flaviviruses have evolved RNA capping enzymes to form the viral RNA cap structure that protects the viral genome and directs efficient viral polyprotein translation. The N-terminal domain of NS5 possesses the methyltransferase and guanylyltransferase activities necessary for forming mature RNA cap structures. The mechanism for flavivirus guanylyltransferase activity is currently unknown, and how the capping enzyme binds its diphosphorylated RNA substrate is important for deciphering how the flavivirus guanylyltransferase functions. In this report we examine how flavivirus NS5 N-terminal capping enzymes bind to the 5′ end of the viral RNA using a fluorescence polarization-based RNA binding assay. We observed that the K(D) for RNA binding is approximately 200 nM Dengue, Yellow Fever, and West Nile virus capping enzymes. Removal of one or both of the 5′ phosphates reduces binding affinity, indicating that the terminal phosphates contribute significantly to binding. RNA binding affinity is negatively affected by the presence of GTP or ATP and positively affected by S-adensyl methoninine (SAM). Structural superpositioning of the dengue virus capping enzyme with the Vaccinia virus VP39 protein bound to RNA suggests how the flavivirus capping enzyme may bind RNA, and mutagenesis analysis of residues in the putative RNA binding site demonstrate that several basic residues are critical for RNA binding. Several mutants show differential binding to 5′ di-, mono-, and un-phosphorylated RNAs. The mode of RNA binding appears similar to that found with other methyltransferase enzymes, and a discussion of diphosphorylated RNA binding is presented.
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spelling pubmed-31921152011-10-21 Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme Henderson, Brittney R. Saeedi, Bejan J. Campagnola, Grace Geiss, Brian J. PLoS One Research Article Flaviviruses are small, capped positive sense RNA viruses that replicate in the cytoplasm of infected cells. Dengue virus and other related flaviviruses have evolved RNA capping enzymes to form the viral RNA cap structure that protects the viral genome and directs efficient viral polyprotein translation. The N-terminal domain of NS5 possesses the methyltransferase and guanylyltransferase activities necessary for forming mature RNA cap structures. The mechanism for flavivirus guanylyltransferase activity is currently unknown, and how the capping enzyme binds its diphosphorylated RNA substrate is important for deciphering how the flavivirus guanylyltransferase functions. In this report we examine how flavivirus NS5 N-terminal capping enzymes bind to the 5′ end of the viral RNA using a fluorescence polarization-based RNA binding assay. We observed that the K(D) for RNA binding is approximately 200 nM Dengue, Yellow Fever, and West Nile virus capping enzymes. Removal of one or both of the 5′ phosphates reduces binding affinity, indicating that the terminal phosphates contribute significantly to binding. RNA binding affinity is negatively affected by the presence of GTP or ATP and positively affected by S-adensyl methoninine (SAM). Structural superpositioning of the dengue virus capping enzyme with the Vaccinia virus VP39 protein bound to RNA suggests how the flavivirus capping enzyme may bind RNA, and mutagenesis analysis of residues in the putative RNA binding site demonstrate that several basic residues are critical for RNA binding. Several mutants show differential binding to 5′ di-, mono-, and un-phosphorylated RNAs. The mode of RNA binding appears similar to that found with other methyltransferase enzymes, and a discussion of diphosphorylated RNA binding is presented. Public Library of Science 2011-10-12 /pmc/articles/PMC3192115/ /pubmed/22022449 http://dx.doi.org/10.1371/journal.pone.0025795 Text en Henderson et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Henderson, Brittney R.
Saeedi, Bejan J.
Campagnola, Grace
Geiss, Brian J.
Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title_full Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title_fullStr Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title_full_unstemmed Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title_short Analysis of RNA Binding by the Dengue Virus NS5 RNA Capping Enzyme
title_sort analysis of rna binding by the dengue virus ns5 rna capping enzyme
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3192115/
https://www.ncbi.nlm.nih.gov/pubmed/22022449
http://dx.doi.org/10.1371/journal.pone.0025795
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