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In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns
INTRODUCTION: The present work sought to identify MHC-I-restricted peptide signatures for arbovirus using in silico and in vitro peptide microarray tools. METHODS: First, an in-silico analysis of immunogenic epitopes restricted to four of the most prevalent human MHC class-I was performed by identif...
Autores principales: | , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9713826/ https://www.ncbi.nlm.nih.gov/pubmed/36466864 http://dx.doi.org/10.3389/fimmu.2022.1035515 |
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author | Lopes-Ribeiro, Ágata Araujo, Franklin Pereira Oliveira, Patrícia de Melo Teixeira, Lorena de Almeida Ferreira, Geovane Marques Lourenço, Alice Aparecida Dias, Laura Cardoso Corrêa Teixeira, Caio Wilker Retes, Henrique Morais Lopes, Élisson Nogueira Versiani, Alice Freitas Barbosa-Stancioli, Edel Figueiredo da Fonseca, Flávio Guimarães Martins-Filho, Olindo Assis Tsuji, Moriya Peruhype-Magalhães, Vanessa Coelho-dos-Reis, Jordana Grazziela Alves |
author_facet | Lopes-Ribeiro, Ágata Araujo, Franklin Pereira Oliveira, Patrícia de Melo Teixeira, Lorena de Almeida Ferreira, Geovane Marques Lourenço, Alice Aparecida Dias, Laura Cardoso Corrêa Teixeira, Caio Wilker Retes, Henrique Morais Lopes, Élisson Nogueira Versiani, Alice Freitas Barbosa-Stancioli, Edel Figueiredo da Fonseca, Flávio Guimarães Martins-Filho, Olindo Assis Tsuji, Moriya Peruhype-Magalhães, Vanessa Coelho-dos-Reis, Jordana Grazziela Alves |
author_sort | Lopes-Ribeiro, Ágata |
collection | PubMed |
description | INTRODUCTION: The present work sought to identify MHC-I-restricted peptide signatures for arbovirus using in silico and in vitro peptide microarray tools. METHODS: First, an in-silico analysis of immunogenic epitopes restricted to four of the most prevalent human MHC class-I was performed by identification of MHC affinity score. For that, more than 10,000 peptide sequences from 5 Arbovirus and 8 different viral serotypes, namely Zika (ZIKV), Dengue (DENV serotypes 1-4), Chikungunya (CHIKV), Mayaro (MAYV) and Oropouche (OROV) viruses, in addition to YFV were analyzed. Haplotype HLA-A*02.01 was the dominant human MHC for all arboviruses. Over one thousand HLA-A2 immunogenic peptides were employed to build a comprehensive identity matrix. Intending to assess HLAA*02:01 reactivity of peptides in vitro, a peptide microarray was designed and generated using a dimeric protein containing HLA-A*02:01. RESULTS: The comprehensive identity matrix allowed the identification of only three overlapping peptides between two or more flavivirus sequences, suggesting poor overlapping of virus-specific immunogenic peptides amongst arborviruses. Global analysis of the fluorescence intensity for peptide-HLA-A*02:01 binding indicated a dose-dependent effect in the array. Considering all assessed arboviruses, the number of DENV-derived peptides with HLA-A*02:01 reactivity was the highest. Furthermore, a lower number of YFV-17DD overlapping peptides presented reactivity when compared to non-overlapping peptides. In addition, the assessment of HLA-A*02:01-reactive peptides across virus polyproteins highlighted non-structural proteins as “hot-spots”. Data analysis supported these findings showing the presence of major hydrophobic sites in the final segment of non-structural protein 1 throughout 2a (Ns2a) and in nonstructural proteins 2b (Ns2b), 4a (Ns4a) and 4b (Ns4b). DISCUSSION: To our knowledge, these results provide the most comprehensive and detailed snapshot of the immunodominant peptide signature for arbovirus with MHC-class I restriction, which may bring insight into the design of future virus-specific vaccines to arboviruses and for vaccination protocols in highly endemic areas. |
format | Online Article Text |
id | pubmed-9713826 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-97138262022-12-02 In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns Lopes-Ribeiro, Ágata Araujo, Franklin Pereira Oliveira, Patrícia de Melo Teixeira, Lorena de Almeida Ferreira, Geovane Marques Lourenço, Alice Aparecida Dias, Laura Cardoso Corrêa Teixeira, Caio Wilker Retes, Henrique Morais Lopes, Élisson Nogueira Versiani, Alice Freitas Barbosa-Stancioli, Edel Figueiredo da Fonseca, Flávio Guimarães Martins-Filho, Olindo Assis Tsuji, Moriya Peruhype-Magalhães, Vanessa Coelho-dos-Reis, Jordana Grazziela Alves Front Immunol Immunology INTRODUCTION: The present work sought to identify MHC-I-restricted peptide signatures for arbovirus using in silico and in vitro peptide microarray tools. METHODS: First, an in-silico analysis of immunogenic epitopes restricted to four of the most prevalent human MHC class-I was performed by identification of MHC affinity score. For that, more than 10,000 peptide sequences from 5 Arbovirus and 8 different viral serotypes, namely Zika (ZIKV), Dengue (DENV serotypes 1-4), Chikungunya (CHIKV), Mayaro (MAYV) and Oropouche (OROV) viruses, in addition to YFV were analyzed. Haplotype HLA-A*02.01 was the dominant human MHC for all arboviruses. Over one thousand HLA-A2 immunogenic peptides were employed to build a comprehensive identity matrix. Intending to assess HLAA*02:01 reactivity of peptides in vitro, a peptide microarray was designed and generated using a dimeric protein containing HLA-A*02:01. RESULTS: The comprehensive identity matrix allowed the identification of only three overlapping peptides between two or more flavivirus sequences, suggesting poor overlapping of virus-specific immunogenic peptides amongst arborviruses. Global analysis of the fluorescence intensity for peptide-HLA-A*02:01 binding indicated a dose-dependent effect in the array. Considering all assessed arboviruses, the number of DENV-derived peptides with HLA-A*02:01 reactivity was the highest. Furthermore, a lower number of YFV-17DD overlapping peptides presented reactivity when compared to non-overlapping peptides. In addition, the assessment of HLA-A*02:01-reactive peptides across virus polyproteins highlighted non-structural proteins as “hot-spots”. Data analysis supported these findings showing the presence of major hydrophobic sites in the final segment of non-structural protein 1 throughout 2a (Ns2a) and in nonstructural proteins 2b (Ns2b), 4a (Ns4a) and 4b (Ns4b). DISCUSSION: To our knowledge, these results provide the most comprehensive and detailed snapshot of the immunodominant peptide signature for arbovirus with MHC-class I restriction, which may bring insight into the design of future virus-specific vaccines to arboviruses and for vaccination protocols in highly endemic areas. Frontiers Media S.A. 2022-11-17 /pmc/articles/PMC9713826/ /pubmed/36466864 http://dx.doi.org/10.3389/fimmu.2022.1035515 Text en Copyright © 2022 Lopes-Ribeiro, Araujo, Oliveira, Teixeira, Ferreira, Lourenço, Dias, Teixeira, Retes, Lopes, Versiani, Barbosa-Stancioli, da Fonseca, Martins-Filho, Tsuji, Peruhype-Magalhães and Coelho-dos-Reis https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms. |
spellingShingle | Immunology Lopes-Ribeiro, Ágata Araujo, Franklin Pereira Oliveira, Patrícia de Melo Teixeira, Lorena de Almeida Ferreira, Geovane Marques Lourenço, Alice Aparecida Dias, Laura Cardoso Corrêa Teixeira, Caio Wilker Retes, Henrique Morais Lopes, Élisson Nogueira Versiani, Alice Freitas Barbosa-Stancioli, Edel Figueiredo da Fonseca, Flávio Guimarães Martins-Filho, Olindo Assis Tsuji, Moriya Peruhype-Magalhães, Vanessa Coelho-dos-Reis, Jordana Grazziela Alves In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title |
In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title_full |
In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title_fullStr |
In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title_full_unstemmed |
In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title_short |
In silico and in vitro arboviral MHC class I-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
title_sort | in silico and in vitro arboviral mhc class i-restricted-epitope signatures reveal immunodominance and poor overlapping patterns |
topic | Immunology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9713826/ https://www.ncbi.nlm.nih.gov/pubmed/36466864 http://dx.doi.org/10.3389/fimmu.2022.1035515 |
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