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Biochemical and Structural Characterization of the Carbohydrate Transport Substrate-binding-protein SP0092
Published on: October 2, 2017
In silico design and characterization of a novel multi-epitope mRNA vaccine candidate against Streptococcus
Jahangir Sabzevari1,2, Omid Ali Adeli3, Mona Shafaghi4,5
1Department of Microbiology, School of Medicine, Hamadan University of Medical Sciences, Hamadan, Iran.
Abstract:
Streptococcus pneumoniae (pneumococcus) is a major cause of pneumonia, meningitis, bacteremia, and secondary infections following viral respiratory diseases such as influenza and COVID-19. Because current polysaccharide-based vaccines protect only against selected serotypes, there is a pressing need for serotype-independent strategies. In this study, a novel multi-epitope mRNA vaccine candidate against S. pneumoniae was designed using immunoinformatics approaches. The immunodominant regions of PsaA and PspA were fused with flexible linkers, and TLR agonist domains derived from Ply and PepO were incorporated as adjuvants to enhance immune activation. The resulting construct, named YAPO, was predicted to possess favorable physicochemical and immunological properties, including stability, solubility, antigenicity, non-allergenicity, and non-toxicity. Additional analyses-including IFN-γ epitope prediction, conformational B-cell epitope mapping, HLA docking, vaccine-TLR docking, molecular dynamics, and immune simulations- indicated potential to induce robust immune responses. The mRNA sequence was engineered with essential regulatory elements (5' cap, UTRs, Kozak sequence, signal peptide, and poly(A) tail) to promote efficient expression, and codon optimization suggested compatibility with mammalian translation. In silico cloning into the pcDNA3.1(+) vector further supported potential construct feasibility. Overall, these findings highlight that YAPO-mRNA is a promising serotype-independent pneumococcal vaccine candidate that merits further experimental validation.
Insights
A novel mRNA vaccine candidate, YAPO, shows promise as a serotype-independent strategy against Streptococcus pneumoniae infections. Computational analyses predict it can induce strong immune responses, offering a potential new tool against pneumococcal diseases.
Area of Science:
- Infectious Diseases
- Vaccinology
- Bioinformatics
Background:
- Streptococcus pneumoniae causes severe pneumonia, meningitis, and bacteremia.
- Current vaccines are serotype-specific, limiting their broad effectiveness.
- A serotype-independent vaccine is needed to combat pneumococcal infections, especially post-viral illnesses.
Purpose of the Study:
- To design and computationally evaluate a novel multi-epitope mRNA vaccine (YAPO) against Streptococcus pneumoniae.
- To explore immunoinformatics approaches for developing serotype-independent vaccine strategies.
- To assess the predicted immunogenicity and feasibility of the YAPO mRNA construct.
Main Methods:
- Immunoinformatics tools were used to identify and fuse immunodominant regions of PsaA and PspA.
- TLR agonist domains from Ply and PepO were incorporated as adjuvants.
- Extensive in silico analyses included epitope prediction, molecular dynamics, and immune simulations.
Main Results:
- The YAPO construct demonstrated favorable predicted physicochemical and immunological properties.
- In silico analyses indicated the potential to induce robust T-cell and B-cell immune responses.
- The mRNA sequence was engineered for efficient expression and mammalian translation.
Conclusions:
- YAPO-mRNA represents a promising candidate for a serotype-independent pneumococcal vaccine.
- The computational design approach highlights the potential of immunoinformatics in vaccine development.
- Further experimental validation is warranted to confirm the efficacy of the YAPO vaccine.
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