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Published on: December 19, 2020
Reverse and structural vaccinology approach to design a highly immunogenic multi-epitope subunit vaccine against
Lohany Dias Mamede1, Keila Gonçalves de Paula2, Bianca de Oliveira1
1Molecular Biology laboratory, Federal University of São João del Rei- Divinópolis, MG, Brazil.
Abstract:
Streptococcus pneumoniae is a pathogen that resides in the upper respiratory tract of healthy individuals, maintaining a commensal relationship with its host. However, the virulent form may be the etiology of pneumonia, meningitis, bacteremia, and other respiratory tract infections. Streptococcal diseases are preventable by vaccination; but currently available vaccines have some drawbacks, especially due to the high capsule variability of streptococci strains. Thus, an effective prevention strategy continues to be the focus of extensive research. In our work, several bioinformatics tools were used to identify immunogenic peptides from a selected pool of 46 conserved proteins from Streptococcus pneumoniae. In silico analysis showed that 10 proteins had epitopes with affinity for B and T lymphocytes, which were present in at least 26 different pathogens serotypes and were considered promiscuous. The multi-epitope protein, designated HC44, was designed based on these epitopes and specific linkers to improve stability and exposure to T lymphocytes. The recombinant HC44 protein was expressed in E.coli and Swiss-Webster mice were immunised by intraperitoneal injection. Immunisation with the multi-epitope HC44 protein resulted in the production of very high levels of IgG with title superior to 1/1.200.000. However, subtype IgG was highly unbalanced toward IgG1 and no protection was afforded after challenge with S.pneumoniae in a sepsis model. Thus, our strategy has been effective in constructing a highly antigenic protein but novel immunisation strategies should be investigated to reorient the immune system toward a protective response.
Insights
Developing a novel multi-epitope protein, HC44, from Streptococcus pneumoniae showed high antigenicity in mice. However, the vaccine strategy needs refinement for effective protection against pneumococcal infections.
Area of Science:
- * Immunology
- * Bioinformatics
- * Vaccinology
Background:
- * Streptococcus pneumoniae causes severe diseases like pneumonia and meningitis.
- * Current vaccines face challenges due to strain variability.
- * Novel strategies are needed for effective pneumococcal disease prevention.
Purpose of the Study:
- * To identify conserved immunogenic peptides from Streptococcus pneumoniae.
- * To design and evaluate a multi-epitope protein vaccine (HC44).
- * To assess the immunogenicity and protective efficacy of HC44.
Main Methods:
- * Bioinformatics tools for identifying conserved proteins and epitopes.
- * Design of a multi-epitope protein (HC44) with specific linkers.
- * Expression of recombinant HC44 in E. coli and immunization of mice.
- * Measurement of IgG antibody levels and assessment of protection in a sepsis model.
Main Results:
- * Identified 10 conserved proteins with promiscuous epitopes across 26 serotypes.
- * Designed and expressed the multi-epitope protein HC44.
- * Achieved high IgG antibody titers (>1/1,200,000) post-immunization.
- * Observed an unbalanced IgG subtype response (favoring IgG1) and lack of protection against S. pneumoniae challenge.
Conclusions:
- * The HC44 protein is highly antigenic, inducing significant antibody production.
- * Current immunization strategies require modification to elicit a protective immune response.
- * Further research is needed to develop effective vaccines against Streptococcus pneumoniae.
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