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The Mutational Robustness of Influenza A Virus

A virus’ mutational robustness is described in terms of the strength and distribution of the mutational fitness effects, or MFE. The distribution of MFE is central to many questions in evolutionary theory and is a key parameter in models of molecular evolution. Here we define the mutational fitness...

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Autores principales: Visher, Elisa, Whitefield, Shawn E., McCrone, John T., Fitzsimmons, William, Lauring, Adam S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5003363/
https://www.ncbi.nlm.nih.gov/pubmed/27571422
http://dx.doi.org/10.1371/journal.ppat.1005856
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author Visher, Elisa
Whitefield, Shawn E.
McCrone, John T.
Fitzsimmons, William
Lauring, Adam S.
author_facet Visher, Elisa
Whitefield, Shawn E.
McCrone, John T.
Fitzsimmons, William
Lauring, Adam S.
author_sort Visher, Elisa
collection PubMed
description A virus’ mutational robustness is described in terms of the strength and distribution of the mutational fitness effects, or MFE. The distribution of MFE is central to many questions in evolutionary theory and is a key parameter in models of molecular evolution. Here we define the mutational fitness effects in influenza A virus by generating 128 viruses, each with a single nucleotide mutation. In contrast to mutational scanning approaches, this strategy allowed us to unambiguously assign fitness values to individual mutations. The presence of each desired mutation and the absence of additional mutations were verified by next generation sequencing of each stock. A mutation was considered lethal only after we failed to rescue virus in three independent transfections. We measured the fitness of each viable mutant relative to the wild type by quantitative RT-PCR following direct competition on A549 cells. We found that 31.6% of the mutations in the genome-wide dataset were lethal and that the lethal fraction did not differ appreciably between the HA- and NA-encoding segments and the rest of the genome. Of the viable mutants, the fitness mean and standard deviation were 0.80 and 0.22 in the genome-wide dataset and best modeled as a beta distribution. The fitness impact of mutation was marginally lower in the segments coding for HA and NA (0.88 ± 0.16) than in the other 6 segments (0.78 ± 0.24), and their respective beta distributions had slightly different shape parameters. The results for influenza A virus are remarkably similar to our own analysis of CirSeq-derived fitness values from poliovirus and previously published data from other small, single stranded DNA and RNA viruses. These data suggest that genome size, and not nucleic acid type or mode of replication, is the main determinant of viral mutational fitness effects.
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spelling pubmed-50033632016-09-12 The Mutational Robustness of Influenza A Virus Visher, Elisa Whitefield, Shawn E. McCrone, John T. Fitzsimmons, William Lauring, Adam S. PLoS Pathog Research Article A virus’ mutational robustness is described in terms of the strength and distribution of the mutational fitness effects, or MFE. The distribution of MFE is central to many questions in evolutionary theory and is a key parameter in models of molecular evolution. Here we define the mutational fitness effects in influenza A virus by generating 128 viruses, each with a single nucleotide mutation. In contrast to mutational scanning approaches, this strategy allowed us to unambiguously assign fitness values to individual mutations. The presence of each desired mutation and the absence of additional mutations were verified by next generation sequencing of each stock. A mutation was considered lethal only after we failed to rescue virus in three independent transfections. We measured the fitness of each viable mutant relative to the wild type by quantitative RT-PCR following direct competition on A549 cells. We found that 31.6% of the mutations in the genome-wide dataset were lethal and that the lethal fraction did not differ appreciably between the HA- and NA-encoding segments and the rest of the genome. Of the viable mutants, the fitness mean and standard deviation were 0.80 and 0.22 in the genome-wide dataset and best modeled as a beta distribution. The fitness impact of mutation was marginally lower in the segments coding for HA and NA (0.88 ± 0.16) than in the other 6 segments (0.78 ± 0.24), and their respective beta distributions had slightly different shape parameters. The results for influenza A virus are remarkably similar to our own analysis of CirSeq-derived fitness values from poliovirus and previously published data from other small, single stranded DNA and RNA viruses. These data suggest that genome size, and not nucleic acid type or mode of replication, is the main determinant of viral mutational fitness effects. Public Library of Science 2016-08-29 /pmc/articles/PMC5003363/ /pubmed/27571422 http://dx.doi.org/10.1371/journal.ppat.1005856 Text en © 2016 Visher 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
Visher, Elisa
Whitefield, Shawn E.
McCrone, John T.
Fitzsimmons, William
Lauring, Adam S.
The Mutational Robustness of Influenza A Virus
title The Mutational Robustness of Influenza A Virus
title_full The Mutational Robustness of Influenza A Virus
title_fullStr The Mutational Robustness of Influenza A Virus
title_full_unstemmed The Mutational Robustness of Influenza A Virus
title_short The Mutational Robustness of Influenza A Virus
title_sort mutational robustness of influenza a virus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5003363/
https://www.ncbi.nlm.nih.gov/pubmed/27571422
http://dx.doi.org/10.1371/journal.ppat.1005856
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