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A High Throughput MHC II Binding Assay for Quantitative Analysis of Peptide Epitopes
Published on: March 25, 2014
Immunoinformatic Approach for Rational Identification of Immunogenic Peptides Against Host Entry and/or Exit Mpox
Leonardo Pereira de Araújo1, Natália Cristina de Melo Santos1, Patrícia Paiva Corsetti1
1Departamento de Microbiologia e Imunologia, Universidade Federal de Alfenas, Alfenas, Brazil.
Abstract:
COVID-19 has intensified humanity's concern about the emergence of new pandemics. Since 2018, epidemic outbreaks of the mpox virus have become worrisome. In June 2022, the World Health Organization declared the disease a global health emergency, with 14 500 cases reported by the Centers for Disease Control and Prevention in 60 countries. Therefore, the development of a vaccine based on the current virus genome is paramount in combating new cases. In view of this, we hypothesized the obtainment of rational immunogenic peptides predicted from proteins responsible for entry of the mpox virus into the host (A17L, A26L/A30L, A33R, H2R, L1R), exit (A27L, A35R, A36R, C19L), and both (B5R). To achieve this, we aligned the genome sequencing data of mpox virus isolated from an infected individual in the United States in June 2022 (ON674051.1) with the reference genome dated 2001 (NC_003310.1) for conservation analysis. The Immune Epitope Database server was used for the identification and characterization of the epitopes of each protein related to major histocompatibility complex I or II interaction and recognition by B-cell receptors, resulting in 138 epitopes for A17L, 233 for A28L, 48 for A33R, 77 for H2R, 77 for L1R, 270 for A27L, 72 for A35R, A36R, 148 for C19L, and 276 for B5R. These epitopes were tested in silico for antigenicity, physicochemical properties, and allergenicity, resulting in 51, 40, 10, 34, 38, 57, 25, 7, 47, and 53 epitopes, respectively. Additionally, to select an epitope with the highest promiscuity of binding to major histocompatibility complexes and B-cell receptor simultaneously, all epitopes of each protein were aligned, and the most repetitive and antigenic regions were identified. By classifying the results, we obtained 23 epitopes from the entry proteins, 16 from the exit proteins, and 7 from both. Subsequently, 1 epitope from each protein was selected, and all 3 were fused to construct a chimeric protein that has potential as a multiepitope vaccine. The constructed vaccine was then analyzed for its physicochemical, antigenic, and allergenic properties. Protein modeling, molecular dynamics, and molecular docking were performed on Toll-like receptors 2, 4, and 8, followed by in silico immune simulation of the vaccine. Finally, the results indicate an effective, stable, and safe vaccine that can be further tested, especially in vitro and in vivo, to validate the findings demonstrated in silico.
Insights
This study designed a novel multiepitope mpox virus vaccine by identifying conserved viral epitopes. Computational analysis suggests this chimeric vaccine is safe and effective, warranting further in vitro and in vivo testing.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- The mpox virus (monkeypox virus) poses a significant public health threat, highlighted by recent global outbreaks and its declaration as a public health emergency.
- The emergence of mpox necessitates the urgent development of effective vaccines to prevent future pandemics.
- Targeting conserved viral proteins involved in host entry and exit is a rational approach for vaccine design.
Purpose of the Study:
- To computationally design a novel multiepitope vaccine against the mpox virus.
- To identify and characterize immunogenic peptides from key mpox virus proteins involved in host cell entry and exit.
- To evaluate the potential efficacy, safety, and stability of the designed chimeric vaccine through in silico methods.
Main Methods:
- Comparative genomic analysis of mpox virus strains to identify conserved regions.
- In silico prediction and characterization of T-cell and B-cell epitopes using the Immune Epitope Database.
- In silico assessment of vaccine candidate's antigenicity, physicochemical properties, allergenicity, and interactions with Toll-like receptors, followed by molecular dynamics and immune simulations.
Main Results:
- Identification of numerous conserved epitopes from mpox virus entry (A17L, H2R, L1R) and exit (A27L, C19L) proteins, as well as proteins involved in both processes (B5R).
- Selection and fusion of 23, 16, and 7 epitopes from entry, exit, and dual-function proteins, respectively, to create a chimeric multiepitope vaccine candidate.
- In silico analyses indicated the chimeric vaccine is stable, antigenic, non-allergenic, and demonstrates favorable interactions with Toll-like receptors 2, 4, and 8, suggesting a robust immune response.
Conclusions:
- A computationally designed multiepitope mpox virus vaccine shows promising potential as a safe and effective prophylactic agent.
- The in silico findings provide a strong foundation for further experimental validation of this novel vaccine candidate.
- This rational vaccine design approach could be instrumental in combating current and future mpox outbreaks.
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