ArticleScientific reports2025
Rational computational design and development of an immunogenic multiepitope vaccine incorporating transmembrane proteins of Fusobacterium necrophorum.
Article in Scientific reports, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. An erratum has been issued. Cited by 17 papers.
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Who cites it
17 citing papers in PubMed.
- Outer membrane vesicles fromVirulence · 2026Article
- Immunoinformatics-driven multi-epitope vaccine design as a promising strategy against multidrug-resistant pathogens: a comprehensive review.Folia microbiologica · 2026Review
- A protocol for computational design of mRNA vaccines with high functionality and specificity.Biology direct · 2026Article
- Integrative 16S rRNA characterization, pan-genome, and immunoinformatics approaches for the design of a multi-epitope vaccine against Bacillus cereus, a foodborne pathogen.World journal of microbiology & biotechnology · 2026Article
- Immunoinformatics-driven design of a multi-epitope vaccine against Seoul Virus: Structural, dynamic, and immunogenic profiling.Clinics (Sao Paulo, Brazil) · 2026Article
- Molecular characterization and immunoinformatics-based design of a multi-epitope vaccine against Staphylococcus nepalensis.Antonie van Leeuwenhoek · 2026Article
- Multi-epitope vaccine against nucleoprotein and envelopment polyprotein of Batai orthobunyavirus using molecular docking and molecular dynamics studies.Scientific reports · 2026Article
- In Silico identification of inhalable small-molecule IL-33/ST2 antagonists for severe type-2-high asthma endotypes.Scientific reports · 2026Article
- In silico design and immunoinformatics assessment of a multiepitope vaccine targeting borealpox virus.Scientific reports · 2026Article
- Immunoinformatics-based design and evaluation of a multi-epitope vaccine against Vibrio fluvialis.Scientific reports · 2026Article
- Molecular identification of the blaOXA gene in Bacillus cereus and AI-driven optimization of natural phytochemicals for foodborne illness treatment.Antonie van Leeuwenhoek · 2026Article
- Immunoinformatics based design of a multiepitope vaccine targetingOpen medicine (Warsaw, Poland) · 2026Article
- Article
- Computational design of a multiepitope vaccine targeting VP1 and VP2 capsid proteins of simian virus 40 (SV40) for enhanced immune activation.Open medicine (Warsaw, Poland) · 2026Article
- Designing a multi-epitope vaccine against yellow fever virus using immunoinformatics approaches.Open medicine (Warsaw, Poland) · 2026Article
- Development of a vaccine construct againstNAR genomics and bioinformatics · 2025Article
- Characterization of T cell responses againstFrontiers in immunology · 2025Article
Corrections and comments
- Erratum issued
Authors and funding
10 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Fusobacterium necrophorum is a Gram-negative, anaerobic pathogen responsible for Lemierre's syndrome, bovine foot rot, and other necrotizing infections. The rise in antimicrobial resistance and the absence of effective vaccines underscore the need for alternative therapeutic strategies. This study employs computational biology to design a multi-epitope vaccine targeting transmembrane proteins of F. necrophorum to elicit strong immune responses. The selected proteins were evaluated for toxicity, allergenicity, and antigenicity, followed by epitope prediction and screening. B and T cell epitopes were linked using immunogenic linkers, forming a vaccine construct with a VaxiJen score of 0.7293 and a solubility score of 8.30 in E. coli. Structural validation using TrRosetta and Ramachandran plots confirmed 97.4% of residues in favored regions, indicating high stability. Population coverage analysis indicated over 99% global applicability, further enhancing its potential impact. Docking studies revealed strong interactions with immune receptors TLR7 and TLR8. TLR7 formed 12 hydrogen bonds, while TLR8(A) formed 9, and TLR8(B) exhibited the highest interaction, forming 13 hydrogen bonds with the vaccine construct. Molecular dynamics simulations confirmed structural stability and receptor engagement. The RMSD stabilized around 4-5 Å, indicating structural stability of the Vaccine-TLR8(B) complex. The Radius of Gyration remained around 36 Å, showing slight compaction over time, while RMSF peaked at 8-9 Å in flexible regions, with lower fluctuations (1.5-2.5 Å) in stable core regions. Principal component analysis (PCA) identified elastic regions critical for biological activity, and the stable energy levels (-5000 kJ/mol) further confirmed the reliability of the binding. Moreover, the vaccine exhibited high expression levels in E. coli, as demonstrated using SnapGene software with the pET-29a( +) vector. The vaccine demonstrated strong binding affinities with immune receptors and predicted activation of both humoral and cellular immune responses, including increased IgM, IgG, and cytokine levels. However, experimental validation is necessary to confirm safety and efficacy, and challenges in vaccine manufacturing and variable immune responses across populations must also be addressed.
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