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Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies

The core shell of hepatitis B virus is a potent immune stimulator, giving a strong neutralizing immune response to foreign epitopes inserted at the immunodominant region, located at the tips of spikes on the exterior of the shell. Here, we analyze structures of core shells with a model epitope inser...

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Autores principales: Roseman, A.M., Borschukova, O., Berriman, J.A., Wynne, S.A., Pumpens, P., Crowther, R.A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3465560/
https://www.ncbi.nlm.nih.gov/pubmed/22750730
http://dx.doi.org/10.1016/j.jmb.2012.06.032
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author Roseman, A.M.
Borschukova, O.
Berriman, J.A.
Wynne, S.A.
Pumpens, P.
Crowther, R.A.
author_facet Roseman, A.M.
Borschukova, O.
Berriman, J.A.
Wynne, S.A.
Pumpens, P.
Crowther, R.A.
author_sort Roseman, A.M.
collection PubMed
description The core shell of hepatitis B virus is a potent immune stimulator, giving a strong neutralizing immune response to foreign epitopes inserted at the immunodominant region, located at the tips of spikes on the exterior of the shell. Here, we analyze structures of core shells with a model epitope inserted at two alternative positions in the immunodominant region. Recombinantly expressed core protein assembles into T = 3 and T = 4 icosahedral shells, and atomic coordinates are available for the T = 4 shell. Since the modified protein assembles predominantly into T = 3 shells, a quasi-atomic model of the native T = 3 shell was made. The spikes in this T = 3 structure resemble those in T = 4 shells crystallized from expressed protein. However, the spikes in the modified shells exhibit an altered conformation, similar to the DNA containing shells in virions. Both constructs allow full access of antibodies to the foreign epitope, DPAFR from the preS1 region of hepatitis B virus surface antigen. However, one induces a 10-fold weaker immune response when injected into mice. In this construct, the epitope is less constrained by the flanking linker regions and is positioned so that the symmetry of the shell causes pairs of epitopes to come close enough to interfere with one another. In the other construct, the epitope mimics the native epitope conformation and position. The interaction of native core shells with an antibody specific to the immunodominant epitope is compared to the constructs with an antibody against the foreign epitope. Our findings have implications for the design of vaccines based on virus-like particles.
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spelling pubmed-34655602012-11-06 Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies Roseman, A.M. Borschukova, O. Berriman, J.A. Wynne, S.A. Pumpens, P. Crowther, R.A. J Mol Biol Article The core shell of hepatitis B virus is a potent immune stimulator, giving a strong neutralizing immune response to foreign epitopes inserted at the immunodominant region, located at the tips of spikes on the exterior of the shell. Here, we analyze structures of core shells with a model epitope inserted at two alternative positions in the immunodominant region. Recombinantly expressed core protein assembles into T = 3 and T = 4 icosahedral shells, and atomic coordinates are available for the T = 4 shell. Since the modified protein assembles predominantly into T = 3 shells, a quasi-atomic model of the native T = 3 shell was made. The spikes in this T = 3 structure resemble those in T = 4 shells crystallized from expressed protein. However, the spikes in the modified shells exhibit an altered conformation, similar to the DNA containing shells in virions. Both constructs allow full access of antibodies to the foreign epitope, DPAFR from the preS1 region of hepatitis B virus surface antigen. However, one induces a 10-fold weaker immune response when injected into mice. In this construct, the epitope is less constrained by the flanking linker regions and is positioned so that the symmetry of the shell causes pairs of epitopes to come close enough to interfere with one another. In the other construct, the epitope mimics the native epitope conformation and position. The interaction of native core shells with an antibody specific to the immunodominant epitope is compared to the constructs with an antibody against the foreign epitope. Our findings have implications for the design of vaccines based on virus-like particles. Elsevier 2012-10-12 /pmc/articles/PMC3465560/ /pubmed/22750730 http://dx.doi.org/10.1016/j.jmb.2012.06.032 Text en © 2012 Elsevier Ltd. https://creativecommons.org/licenses/by/3.0/ Open Access under CC BY 3.0 (https://creativecommons.org/licenses/by/3.0/) license
spellingShingle Article
Roseman, A.M.
Borschukova, O.
Berriman, J.A.
Wynne, S.A.
Pumpens, P.
Crowther, R.A.
Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title_full Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title_fullStr Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title_full_unstemmed Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title_short Structures of Hepatitis B Virus Cores Presenting a Model Epitope and Their Complexes with Antibodies
title_sort structures of hepatitis b virus cores presenting a model epitope and their complexes with antibodies
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3465560/
https://www.ncbi.nlm.nih.gov/pubmed/22750730
http://dx.doi.org/10.1016/j.jmb.2012.06.032
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