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Updated: Jan 19, 2026

Intrabronchial Instillation of Streptococcus pneumoniae in Immunocompetent Rodent Models
Designing self-assembled peptide nanovaccine against Streptococcus pneumoniae: An in silico strategy
Hesam Dorosti1, Mahboobeh Eslami2, Navid Nezafat1
1Pharmaceutical Sciences Research Center, Shiraz University of Medical Sciences, Shiraz, Iran; Department of Pharmaceutical Biotechnology, School of Pharmacy, Shiraz University of Medical Sciences, Shiraz, Iran.
Insights
Developing a novel Streptococcus pneumoniae vaccine using self-assembled peptide nanoparticles is crucial due to rising antibiotic resistance. This epitope-based vaccine aims to overcome limitations of current vaccines by enhancing immunogenicity for better protection against pneumococcal diseases.
Area of Science:
- Vaccinology and Immunology
- Structural Biology
- Bioinformatics
Background:
- Streptococcus pneumoniae causes severe diseases like meningitis, pneumonia, and sepsis, particularly in vulnerable populations.
- Existing vaccines (PPV, PCV) face challenges including serotype replacement and limited efficacy.
- Epitope-based vaccines offer a promising alternative but often suffer from low immunogenicity.
Purpose of the Study:
- To design and structurally validate a novel epitope-based vaccine against Streptococcus pneumoniae.
- To enhance vaccine immunogenicity using self-assembled peptide nanoparticles (SAPNs) as a scaffold.
- To investigate the potential of the designed vaccine construct to elicit a potent immune response.
Main Methods:
- Design of a vaccine construct incorporating cytotoxic T lymphocyte (CTL) and helper T lymphocyte (HTL) epitopes from pneumococcal antigens (PspA, CbpA, PhtD, PiuA).
- Utilized coiled-coil domains (pentamer and trimer) as self-assembling scaffolds for nanoparticle formation.
- Incorporated Diphtheria toxoids (DTD) as a universal T-helper epitope and performed structural, physicochemical, and immunoinformatics analyses.
Main Results:
- Four different arrangements of the vaccine construct were designed and their 3D structures were modeled and validated.
- In silico analyses indicated the potential of the vaccine construct to stimulate a robust immune response against S. pneumoniae.
- The self-assembled peptide nanoparticle structure enhances multivalency and is expected to improve immunogenicity.
Conclusions:
- The developed self-assembled peptide nanoparticle vaccine construct shows significant promise for eliciting a potent immune response against Streptococcus pneumoniae.
- This novel approach addresses the limitations of current pneumococcal vaccines and offers a potential solution to combat antibiotic resistance.
- Further in vivo and in vitro immunological testing is required to confirm the vaccine's efficacy.
Abstract:
Streptococcus pneumoniae is the main cause of diseases such as meningitis, pneumoniae and sepsis, especially in children and old people. Due to costly antibiotic treatment, and increasing resistance of pneumococcus, developing high-efficient protective vaccine against this pathogen is an urgent need. Although the pneumoniae polysaccharide vaccine (PPV) and pneumonia conjugate vaccines (PCV) are the efficient pneumococcal vaccine in children and adult groups, but the serotype replacement of S. pneumoniae strains causes the reduction in efficacy of such vaccines. For overcoming the aforesaid drawbacks epitope-based vaccines are introduced as the relevant alternative. In our previous research, the epitope vaccine was designed based on immunodominant epitopes from PspA, CbpA antigens as cellular stimulants and PhtD, PiuA as humoral stimulants. Because the low immunogenicity is the main disadvantage of epitope vaccine, in the current study, we applied coiled-coil self-assembled structures for developing our vaccine. Recently, self-assembled peptide nanoparticles (SAPNs) have gained much attention in the field of vaccine development due to their multivalency, self-adjuvanticity, biocompatibility, and size similarity to pathogen. In this regard, the final designed vaccine is comprised of cytotoxic T lymphocytes (CTL) epitopes from PspA and CbpA, helper T lymphocytes (HTL) epitopes from PhtD and PiuA, the pentamer and trimmer oligomeric domains form 5-stranded and 3-stranded coiled-coils as self-assembled scaffold, Diphtheria toxoids (DTD) as a universal T-helper, which fused to each other with appropriate linkers. The four different arrangements based on the order of above-mentioned compartments were constructed, and each of them were modeled, and validated to find the 3D structure. The structural, physicochemical, and immunoinformatics analyses of final vaccine construct represented that our vaccine could stimulate potent immune response against S. pneumoniae; however, the potency of that should be approved via various in vivo and in vitro immunological tests.
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