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Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans

Immunization with the vOka vaccine prevents varicella (chickenpox) in children and susceptible adults. The vOka vaccine strain comprises a mixture of genotypes and, despite attenuation, causes rashes in small numbers of recipients. Like wild-type virus, the vaccine establishes latency in neuronal ti...

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Autores principales: Depledge, Daniel P., Kundu, Samit, Jensen, Nancy J., Gray, Eleanor R., Jones, Meleri, Steinberg, Sharon, Gershon, Anne, Kinchington, Paul R., Schmid, D. Scott, Balloux, Francois, Nichols, Richard A., Breuer, Judith
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3907055/
https://www.ncbi.nlm.nih.gov/pubmed/24162921
http://dx.doi.org/10.1093/molbev/mst210
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author Depledge, Daniel P.
Kundu, Samit
Jensen, Nancy J.
Gray, Eleanor R.
Jones, Meleri
Steinberg, Sharon
Gershon, Anne
Kinchington, Paul R.
Schmid, D. Scott
Balloux, Francois
Nichols, Richard A.
Breuer, Judith
author_facet Depledge, Daniel P.
Kundu, Samit
Jensen, Nancy J.
Gray, Eleanor R.
Jones, Meleri
Steinberg, Sharon
Gershon, Anne
Kinchington, Paul R.
Schmid, D. Scott
Balloux, Francois
Nichols, Richard A.
Breuer, Judith
author_sort Depledge, Daniel P.
collection PubMed
description Immunization with the vOka vaccine prevents varicella (chickenpox) in children and susceptible adults. The vOka vaccine strain comprises a mixture of genotypes and, despite attenuation, causes rashes in small numbers of recipients. Like wild-type virus, the vaccine establishes latency in neuronal tissue and can later reactivate to cause Herpes zoster (shingles). Using hybridization-based methodologies, we have purified and sequenced vOka directly from skin lesions. We show that alleles present in the vaccine can be recovered from the lesions and demonstrate the presence of a severe bottleneck between inoculation and lesion formation. Genotypes in any one lesion appear to be descended from one to three vaccine-genotypes with a low frequency of novel mutations. No single vOka haplotype and no novel mutations are consistently present in rashes, indicating that neither new mutations nor recombination with wild type are critical to the evolution of vOka rashes. Instead, alleles arising from attenuation (i.e., not derived from free-living virus) are present at lower frequencies in rash genotypes. We identify 11 loci at which the ancestral allele is selected for in vOka rash formation and show genotypes in rashes that have reactivated from latency cannot be distinguished from rashes occurring immediately after inoculation. We conclude that the vOka vaccine, although heterogeneous, has not evolved to form rashes through positive selection in the mode of a quasispecies, but rather alleles that were essentially neutral during the vaccine production have been selected against in the human subjects, allowing us to identify key loci for rash formation.
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spelling pubmed-39070552014-01-30 Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans Depledge, Daniel P. Kundu, Samit Jensen, Nancy J. Gray, Eleanor R. Jones, Meleri Steinberg, Sharon Gershon, Anne Kinchington, Paul R. Schmid, D. Scott Balloux, Francois Nichols, Richard A. Breuer, Judith Mol Biol Evol Discoveries Immunization with the vOka vaccine prevents varicella (chickenpox) in children and susceptible adults. The vOka vaccine strain comprises a mixture of genotypes and, despite attenuation, causes rashes in small numbers of recipients. Like wild-type virus, the vaccine establishes latency in neuronal tissue and can later reactivate to cause Herpes zoster (shingles). Using hybridization-based methodologies, we have purified and sequenced vOka directly from skin lesions. We show that alleles present in the vaccine can be recovered from the lesions and demonstrate the presence of a severe bottleneck between inoculation and lesion formation. Genotypes in any one lesion appear to be descended from one to three vaccine-genotypes with a low frequency of novel mutations. No single vOka haplotype and no novel mutations are consistently present in rashes, indicating that neither new mutations nor recombination with wild type are critical to the evolution of vOka rashes. Instead, alleles arising from attenuation (i.e., not derived from free-living virus) are present at lower frequencies in rash genotypes. We identify 11 loci at which the ancestral allele is selected for in vOka rash formation and show genotypes in rashes that have reactivated from latency cannot be distinguished from rashes occurring immediately after inoculation. We conclude that the vOka vaccine, although heterogeneous, has not evolved to form rashes through positive selection in the mode of a quasispecies, but rather alleles that were essentially neutral during the vaccine production have been selected against in the human subjects, allowing us to identify key loci for rash formation. Oxford University Press 2014-02 2013-10-25 /pmc/articles/PMC3907055/ /pubmed/24162921 http://dx.doi.org/10.1093/molbev/mst210 Text en © The Author 2013. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Discoveries
Depledge, Daniel P.
Kundu, Samit
Jensen, Nancy J.
Gray, Eleanor R.
Jones, Meleri
Steinberg, Sharon
Gershon, Anne
Kinchington, Paul R.
Schmid, D. Scott
Balloux, Francois
Nichols, Richard A.
Breuer, Judith
Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title_full Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title_fullStr Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title_full_unstemmed Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title_short Deep Sequencing of Viral Genomes Provides Insight into the Evolution and Pathogenesis of Varicella Zoster Virus and Its Vaccine in Humans
title_sort deep sequencing of viral genomes provides insight into the evolution and pathogenesis of varicella zoster virus and its vaccine in humans
topic Discoveries
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3907055/
https://www.ncbi.nlm.nih.gov/pubmed/24162921
http://dx.doi.org/10.1093/molbev/mst210
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