ArticleFrontiers in immunology2023
Development of a tetravalent subunit vaccine against dengue virus through a vaccinomics approach.
Article in Frontiers in immunology, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 11 citations in OpenAlex.
- Nanoparticle vaccine formulations for dengue virus.RSC pharmaceutics · 2026Review
- Immunoinformatics-guided design of a multi-epitope vaccine targeting the envelopment polyprotein of oropouche virus.Molecular genetics and genomics : MGG · 2026Article
- Advancements in dengue vaccines: A historical overview and pro-spects for following next-generation candidates.Journal of microbiology (Seoul, Korea) · 2025Review
- Computational design of multi-epitope vaccine against Hepatitis C Virus infection using immunoinformatics techniques.PloS one · 2025Article
- The role of antibody-dependent enhancement in dengue vaccination.Tropical diseases, travel medicine and vaccines · 2024Article
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- Design of a novel EmTSP-3 and EmTIP based multi-epitope vaccine againstFrontiers in immunology · 2024Article
- Designing a multi-epitope vaccine againstFrontiers in genetics · 2024Article
Corrections and comments
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Authors and funding
4 authors at 3 institutions in 3 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Dengue virus infection (DVI) is a mosquito-borne disease that can lead to serious morbidity and mortality. Dengue fever (DF) is a major public health concern that affects approximately 3.9 billion people each year globally. However, there is no vaccine or drug available to deal with DVI. Dengue virus consists of four distinct serotypes (DENV1-4), each raising a different immunological response. In the present study, we designed a tetravalent subunit multi-epitope vaccine, targeting proteins including the structural protein envelope domain III (EDIII), precursor membrane proteins (prM), and a non-structural protein (NS1) from each serotype by employing an immunoinformatic approach. Only conserved sequences obtained through a multiple sequence alignment were used for epitope mapping to ensure efficacy against all serotypes. The epitopes were shortlisted based on an IC50 value <50, antigenicity, allergenicity, and a toxicity analysis. In the final vaccine construct, overall, 11 B-cell epitopes, 10 HTL epitopes, and 10 CTL epitopes from EDIII, prM, and NS1 proteins targeting all serotypes were selected and joined via KK, AAY, and GGGS linkers, respectively. We incorporated a 45-amino-acid-long B-defensins adjuvant in the final vaccine construct for a better immunogenic response. The vaccine construct has an antigenic score of 0.79 via VaxiJen and is non-toxic and non-allergenic. Our refined vaccine structure has a Ramachandran score of 96.4%. The vaccine has shown stable interaction with TLR3, which has been validated by 50 ns of molecular dynamics (MD) simulation. Our findings propose that a designed multi-epitope vaccine has substantial potential to elicit a strong immune response against all dengue serotypes without causing any adverse effects. Furthermore, the proposed vaccine can be experimentally validated as a probable vaccine, suggesting it may serve as an effective preventative measure against dengue virus infection.
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