ArticleScientific reports2024
In silico designed novel multi-epitope mRNA vaccines against Brucella by targeting extracellular protein BtuB and LptD.
Article in Scientific reports, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 19 papers.
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Who cites it
19 citing papers in PubMed, 23 citations in OpenAlex.
- Dual-targeting oral nanoparticle mucosal vaccine against brucella infection: co-targeting M cells and dendritic cells.Journal of nanobiotechnology · 2026Article
- Design of a global population-covering multi-epitope mRNA vaccine against Lassa virus using immunoinformatics.Scientific reports · 2026Article
- Brucellosis vaccine development: immunological mechanisms, animal models, and future directions.Archives of microbiology · 2026Review
- Computational design of a novel multi-epitope vaccine candidate against group A rotavirus.Virology journal · 2026Article
- An integrated subtractive genomics and immunoinformatics approach for designing a universal multi-epitope vaccine againstFrontiers in bioinformatics · 2026Article
- 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
- Pathogenicity and virulence ofVirulence · 2025Review
- Development of a multi-epitope vaccine against Helicobacter pylori using a novel saRNA technology through an immunoinformatics approach.Scientific reports · 2025Article
- Design of a multi-Epitope mRNA vaccine against Brucella type IV secretion system using reverse vaccinology and immunogenicity approaches.Scientific reports · 2025Article
- Challenges and opportunities in mRNA vaccine development against bacteria.Nature microbiology · 2025Review
- Evaluating the Immunogenic Potential of ApxI and ApxII fromVeterinary sciences · 2025Article
- Design of Innovative Divalent Cj1621 and CjaA Multiepitope mRNA-Based Vaccine Against FoodborneVeterinary medicine international · 2025Article
- Computational epitope profiling and AI-driven protein engineering enable rational design of multi-epitope vaccines againstComputational and structural biotechnology journal · 2025Article
- Development of a Novel mRNA Vaccine AgainstBioinformatics and biology insights · 2025Article
- Technological breakthroughs and advancements in the application of mRNA vaccines: a comprehensive exploration and future prospects.Frontiers in immunology · 2025Review
- Structure-guided design of a bivalent SARS-CoV-2 mRNA vaccine with NTD stabilizing mutations enhances broad immunity.Frontiers in immunology · 2025Article
- Novel prophylactic and therapeutic multi-epitope vaccine based on Ag85A, Ag85B, ESAT-6, and CFP-10 of Mycobacterium tuberculosis using an immunoinformatics approach.Osong public health and research perspectives · 2024Article
- In Silico design of a multi-epitope vaccine for Human Parechovirus: Integrating immunoinformatics and computational techniques.PloS one · 2024Article
- Novel dual-pathogen multi-epitope mRNA vaccine development for Brucella melitensis and Mycobacterium tuberculosis in silico approach.PloS one · 2024Article
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Authors and funding
10 authors at 2 institutions in 1 country.
Funding
Abstract
Brucella, a gram-negative intracellular bacterium, causing Brucellosis, a zoonotic disease with a range of clinical manifestations, from asymptomatic to fever, fatigue, loss of appetite, joint and muscle pain, and back pain, severe patients have developed serious diseases affecting various organs. The mRNA vaccine is an innovative type of vaccine that is anticipated to supplant traditional vaccines. It is widely utilized for preventing viral infections and for tumor immunotherapy. However, research regarding its effectiveness in preventing bacterial infections is limited. In this study, we analyzed the epitopes of two proteins of brucella, the TonB-dependent outer membrane receptor BtuB and the LPS assembly protein LptD, which is involved in nutrient transport and LPS synthesis in Brucella. In order to effectively stimulate cellular and humoral immunity, we utilize a range of immunoinformatics tools such as VaxiJen, AllergenFPv.1.0 and SignalP 5.0 to design proteins. Finally, five cytotoxic T lymphocyte (CTL) cell epitopes, ten helper T lymphocyte (HTL) cell epitopes, and eight B cell epitopes were selected to construct the vaccine. Computer simulations are also used to verify the immune response of the vaccine. The codon optimization, in silico cloning showed that the vaccine can efficiently transcript and translate in E. coli. The secondary structure of mRNA vaccines and the secondary and tertiary structures of vaccine peptides were predicted and then docked with TLR-4. Finally, the stability of the developed vaccine was confirmed through molecular dynamics simulation. These analyses showed that the design the multi-epitope mRNA vaccine could potentially target extracellular protein of prevalent Brucella, which provided novel strategies for developing the vaccine.
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