Cargando…

Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis

West Nile virus (WNV), an arbovirus maintained in a bird-mosquito enzootic cycle, can infect other vertebrates including humans. WNV was first reported in the US in 1999 where, to date, three genotypes belonging to WNV lineage I have been described (NY99, WN02, SW/WN03). We report here the WNV seque...

Descripción completa

Detalles Bibliográficos
Autores principales: Añez, Germán, Grinev, Andriyan, Chancey, Caren, Ball, Christopher, Akolkar, Namita, Land, Kevin J., Winkelman, Valerie, Stramer, Susan L., Kramer, Laura D., Rios, Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3667762/
https://www.ncbi.nlm.nih.gov/pubmed/23738027
http://dx.doi.org/10.1371/journal.pntd.0002245
_version_ 1782271525661966336
author Añez, Germán
Grinev, Andriyan
Chancey, Caren
Ball, Christopher
Akolkar, Namita
Land, Kevin J.
Winkelman, Valerie
Stramer, Susan L.
Kramer, Laura D.
Rios, Maria
author_facet Añez, Germán
Grinev, Andriyan
Chancey, Caren
Ball, Christopher
Akolkar, Namita
Land, Kevin J.
Winkelman, Valerie
Stramer, Susan L.
Kramer, Laura D.
Rios, Maria
author_sort Añez, Germán
collection PubMed
description West Nile virus (WNV), an arbovirus maintained in a bird-mosquito enzootic cycle, can infect other vertebrates including humans. WNV was first reported in the US in 1999 where, to date, three genotypes belonging to WNV lineage I have been described (NY99, WN02, SW/WN03). We report here the WNV sequences obtained from two birds, one mosquito, and 29 selected human samples acquired during the US epidemics from 2006–2011 and our examination of the evolutionary dynamics in the open-reading frame of WNV isolates reported from 1999–2011. Maximum-likelihood and Bayesian methods were used to perform the phylogenetic analyses and selection pressure analyses were conducted with the HyPhy package. Phylogenetic analysis identified human WNV isolates within the main WNV genotypes that have circulated in the US. Within genotype SW/WN03, we have identified a cluster with strains derived from blood donors and birds from Idaho and North Dakota collected during 2006–2007, termed here MW/WN06. Using different codon-based and branch-site selection models, we detected a number of codons subjected to positive pressure in WNV genes. The mean nucleotide substitution rate for WNV isolates obtained from humans was calculated to be 5.06×10(−4) substitutions/site/year (s/s/y). The Bayesian skyline plot shows that after a period of high genetic variability following the introduction of WNV into the US, the WNV population appears to have reached genetic stability. The establishment of WNV in the US represents a unique opportunity to understand how an arbovirus adapts and evolves in a naïve environment. We describe a novel, well-supported cluster of WNV formed by strains collected from humans and birds from Idaho and North Dakota. Adequate genetic surveillance is essential to public health since new mutants could potentially affect viral pathogenesis, decrease performance of diagnostic assays, and negatively impact the efficacy of vaccines and the development of specific therapies.
format Online
Article
Text
id pubmed-3667762
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-36677622013-06-04 Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis Añez, Germán Grinev, Andriyan Chancey, Caren Ball, Christopher Akolkar, Namita Land, Kevin J. Winkelman, Valerie Stramer, Susan L. Kramer, Laura D. Rios, Maria PLoS Negl Trop Dis Research Article West Nile virus (WNV), an arbovirus maintained in a bird-mosquito enzootic cycle, can infect other vertebrates including humans. WNV was first reported in the US in 1999 where, to date, three genotypes belonging to WNV lineage I have been described (NY99, WN02, SW/WN03). We report here the WNV sequences obtained from two birds, one mosquito, and 29 selected human samples acquired during the US epidemics from 2006–2011 and our examination of the evolutionary dynamics in the open-reading frame of WNV isolates reported from 1999–2011. Maximum-likelihood and Bayesian methods were used to perform the phylogenetic analyses and selection pressure analyses were conducted with the HyPhy package. Phylogenetic analysis identified human WNV isolates within the main WNV genotypes that have circulated in the US. Within genotype SW/WN03, we have identified a cluster with strains derived from blood donors and birds from Idaho and North Dakota collected during 2006–2007, termed here MW/WN06. Using different codon-based and branch-site selection models, we detected a number of codons subjected to positive pressure in WNV genes. The mean nucleotide substitution rate for WNV isolates obtained from humans was calculated to be 5.06×10(−4) substitutions/site/year (s/s/y). The Bayesian skyline plot shows that after a period of high genetic variability following the introduction of WNV into the US, the WNV population appears to have reached genetic stability. The establishment of WNV in the US represents a unique opportunity to understand how an arbovirus adapts and evolves in a naïve environment. We describe a novel, well-supported cluster of WNV formed by strains collected from humans and birds from Idaho and North Dakota. Adequate genetic surveillance is essential to public health since new mutants could potentially affect viral pathogenesis, decrease performance of diagnostic assays, and negatively impact the efficacy of vaccines and the development of specific therapies. Public Library of Science 2013-05-30 /pmc/articles/PMC3667762/ /pubmed/23738027 http://dx.doi.org/10.1371/journal.pntd.0002245 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Añez, Germán
Grinev, Andriyan
Chancey, Caren
Ball, Christopher
Akolkar, Namita
Land, Kevin J.
Winkelman, Valerie
Stramer, Susan L.
Kramer, Laura D.
Rios, Maria
Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title_full Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title_fullStr Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title_full_unstemmed Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title_short Evolutionary Dynamics of West Nile Virus in the United States, 1999–2011: Phylogeny, Selection Pressure and Evolutionary Time-Scale Analysis
title_sort evolutionary dynamics of west nile virus in the united states, 1999–2011: phylogeny, selection pressure and evolutionary time-scale analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3667762/
https://www.ncbi.nlm.nih.gov/pubmed/23738027
http://dx.doi.org/10.1371/journal.pntd.0002245
work_keys_str_mv AT anezgerman evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT grinevandriyan evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT chanceycaren evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT ballchristopher evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT akolkarnamita evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT landkevinj evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT winkelmanvalerie evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT stramersusanl evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT kramerlaurad evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis
AT riosmaria evolutionarydynamicsofwestnilevirusintheunitedstates19992011phylogenyselectionpressureandevolutionarytimescaleanalysis