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Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus

Monkeypox is a self-limiting zoonotic viral disease and causes smallpox-like symptoms. The disease has a case fatality ratio of 3–6% and, recently, a multi-country outbreak of the disease has occurred. The currently available vaccines that have provided immunization against monkeypox are classified...

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Autores principales: Akhtar, Nahid, Kaushik, Vikas, Grewal, Ravneet Kaur, Wani, Atif Khurshid, Suwattanasophon, Chonticha, Choowongkomon, Kiattawee, Oliva, Romina, Shaikh, Abdul Rajjak, Cavallo, Luigi, Chawla, Mohit
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9693848/
https://www.ncbi.nlm.nih.gov/pubmed/36366472
http://dx.doi.org/10.3390/v14112374
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author Akhtar, Nahid
Kaushik, Vikas
Grewal, Ravneet Kaur
Wani, Atif Khurshid
Suwattanasophon, Chonticha
Choowongkomon, Kiattawee
Oliva, Romina
Shaikh, Abdul Rajjak
Cavallo, Luigi
Chawla, Mohit
author_facet Akhtar, Nahid
Kaushik, Vikas
Grewal, Ravneet Kaur
Wani, Atif Khurshid
Suwattanasophon, Chonticha
Choowongkomon, Kiattawee
Oliva, Romina
Shaikh, Abdul Rajjak
Cavallo, Luigi
Chawla, Mohit
author_sort Akhtar, Nahid
collection PubMed
description Monkeypox is a self-limiting zoonotic viral disease and causes smallpox-like symptoms. The disease has a case fatality ratio of 3–6% and, recently, a multi-country outbreak of the disease has occurred. The currently available vaccines that have provided immunization against monkeypox are classified as live attenuated vaccinia virus-based vaccines, which pose challenges of safety and efficacy in chronic infections. In this study, we have used an immunoinformatics-aided design of a multi-epitope vaccine (MEV) candidate by targeting monkeypox virus (MPXV) glycoproteins and membrane proteins. From these proteins, seven epitopes (two T-helper cell epitopes, four T-cytotoxic cell epitopes and one linear B cell epitopes) were finally selected and predicted as antigenic, non-allergic, interferon-γ activating and non-toxic. These epitopes were linked to adjuvants to design a non-allergic and antigenic candidate MPXV-MEV. Further, molecular docking and molecular dynamics simulations predicted stable interactions between predicted MEV and human receptor TLR5. Finally, the immune-simulation analysis showed that the candidate MPXV-MEV could elicit a human immune response. The results obtained from these in silico experiments are promising but require further validation through additional in vivo experiments.
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spelling pubmed-96938482022-11-26 Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus Akhtar, Nahid Kaushik, Vikas Grewal, Ravneet Kaur Wani, Atif Khurshid Suwattanasophon, Chonticha Choowongkomon, Kiattawee Oliva, Romina Shaikh, Abdul Rajjak Cavallo, Luigi Chawla, Mohit Viruses Article Monkeypox is a self-limiting zoonotic viral disease and causes smallpox-like symptoms. The disease has a case fatality ratio of 3–6% and, recently, a multi-country outbreak of the disease has occurred. The currently available vaccines that have provided immunization against monkeypox are classified as live attenuated vaccinia virus-based vaccines, which pose challenges of safety and efficacy in chronic infections. In this study, we have used an immunoinformatics-aided design of a multi-epitope vaccine (MEV) candidate by targeting monkeypox virus (MPXV) glycoproteins and membrane proteins. From these proteins, seven epitopes (two T-helper cell epitopes, four T-cytotoxic cell epitopes and one linear B cell epitopes) were finally selected and predicted as antigenic, non-allergic, interferon-γ activating and non-toxic. These epitopes were linked to adjuvants to design a non-allergic and antigenic candidate MPXV-MEV. Further, molecular docking and molecular dynamics simulations predicted stable interactions between predicted MEV and human receptor TLR5. Finally, the immune-simulation analysis showed that the candidate MPXV-MEV could elicit a human immune response. The results obtained from these in silico experiments are promising but require further validation through additional in vivo experiments. MDPI 2022-10-27 /pmc/articles/PMC9693848/ /pubmed/36366472 http://dx.doi.org/10.3390/v14112374 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Akhtar, Nahid
Kaushik, Vikas
Grewal, Ravneet Kaur
Wani, Atif Khurshid
Suwattanasophon, Chonticha
Choowongkomon, Kiattawee
Oliva, Romina
Shaikh, Abdul Rajjak
Cavallo, Luigi
Chawla, Mohit
Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title_full Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title_fullStr Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title_full_unstemmed Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title_short Immunoinformatics-Aided Design of a Peptide Based Multiepitope Vaccine Targeting Glycoproteins and Membrane Proteins against Monkeypox Virus
title_sort immunoinformatics-aided design of a peptide based multiepitope vaccine targeting glycoproteins and membrane proteins against monkeypox virus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9693848/
https://www.ncbi.nlm.nih.gov/pubmed/36366472
http://dx.doi.org/10.3390/v14112374
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