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Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity

Variola major infection (Smallpox) claimed hundreds of millions lives before it was eradicated by a simple vaccination strategy: epicutaneous application of the related orthopoxvirus Vaccinia virus (VACV) to superficially injured skin (skin scarification, s.s.)1. However, the remarkable success of t...

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Autores principales: Liu, Luzheng, Zhong, Qiong, Tian, Tian, Dubin, Krista, Athale, Shruti K., Kupper, Thomas S.
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3070948/
https://www.ncbi.nlm.nih.gov/pubmed/20081864
http://dx.doi.org/10.1038/nm.2078
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author Liu, Luzheng
Zhong, Qiong
Tian, Tian
Dubin, Krista
Athale, Shruti K.
Kupper, Thomas S.
author_facet Liu, Luzheng
Zhong, Qiong
Tian, Tian
Dubin, Krista
Athale, Shruti K.
Kupper, Thomas S.
author_sort Liu, Luzheng
collection PubMed
description Variola major infection (Smallpox) claimed hundreds of millions lives before it was eradicated by a simple vaccination strategy: epicutaneous application of the related orthopoxvirus Vaccinia virus (VACV) to superficially injured skin (skin scarification, s.s.)1. However, the remarkable success of this strategy was attributed to the immunogenicity of VACV rather than the unique vaccine delivery mode. We now demonstrate that VACV immunization via s.s., but not conventional injection routes, is essential to the generation of superior T cell-mediated immune responses that provide complete protection against subsequent challenges, independent of neutralizing antibodies. Skin-resident effector memory T cells (T(EM)) provide complete protection against cutaneous challenge, while protection against lethal respiratory challenge requires both respiratory mucosal T(EM) and central memory T cells (T(CM)). Vaccination with recombinant VACV (rVACV) expressing a tumor antigen was protective against tumor challenge only if delivered via s.s. route, but not by hypodermic injection. Finally, the clinically safer non-replicative Modified Vaccinia Ankara (MVA) also generated far superior protective immunity when delivered via s.s route compared to intramuscular injection used in MVA clinical trials. Thus, delivering rVACV -based vaccines, including MVA vaccines, through physically disrupted epidermis represents a uniquely powerful strategy with clear-cut advantages over conventional vaccination via hypodermic injection.
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spelling pubmed-30709482011-04-05 Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity Liu, Luzheng Zhong, Qiong Tian, Tian Dubin, Krista Athale, Shruti K. Kupper, Thomas S. Nat Med Article Variola major infection (Smallpox) claimed hundreds of millions lives before it was eradicated by a simple vaccination strategy: epicutaneous application of the related orthopoxvirus Vaccinia virus (VACV) to superficially injured skin (skin scarification, s.s.)1. However, the remarkable success of this strategy was attributed to the immunogenicity of VACV rather than the unique vaccine delivery mode. We now demonstrate that VACV immunization via s.s., but not conventional injection routes, is essential to the generation of superior T cell-mediated immune responses that provide complete protection against subsequent challenges, independent of neutralizing antibodies. Skin-resident effector memory T cells (T(EM)) provide complete protection against cutaneous challenge, while protection against lethal respiratory challenge requires both respiratory mucosal T(EM) and central memory T cells (T(CM)). Vaccination with recombinant VACV (rVACV) expressing a tumor antigen was protective against tumor challenge only if delivered via s.s. route, but not by hypodermic injection. Finally, the clinically safer non-replicative Modified Vaccinia Ankara (MVA) also generated far superior protective immunity when delivered via s.s route compared to intramuscular injection used in MVA clinical trials. Thus, delivering rVACV -based vaccines, including MVA vaccines, through physically disrupted epidermis represents a uniquely powerful strategy with clear-cut advantages over conventional vaccination via hypodermic injection. 2010-01-17 2010-02 /pmc/articles/PMC3070948/ /pubmed/20081864 http://dx.doi.org/10.1038/nm.2078 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Liu, Luzheng
Zhong, Qiong
Tian, Tian
Dubin, Krista
Athale, Shruti K.
Kupper, Thomas S.
Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title_full Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title_fullStr Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title_full_unstemmed Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title_short Physical disruption of skin during poxvirus immunization is critical for the generation of highly protective T cell-mediated immunity
title_sort physical disruption of skin during poxvirus immunization is critical for the generation of highly protective t cell-mediated immunity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3070948/
https://www.ncbi.nlm.nih.gov/pubmed/20081864
http://dx.doi.org/10.1038/nm.2078
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