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Published on: December 19, 2020
Elucidating the Structural and Minimal Protective Epitope of the Serogroup X Meningococcal Capsular Polysaccharide
Gian Pietro Pietri1, Marta Tontini2, Barbara Brogioni2
1Center for Proteomics, Faculty of Medicine, University of Rijeka, Rijeka, Croatia.
Abstract:
Despite the considerable progress toward the eradication of meningococcal disease with the introduction of glycoconjugate vaccines, previously unremarkable serogroup X has emerged in recent years, recording several outbreaks throughout the African continent. Different serogroup X polysaccharide-based vaccines have been tested in preclinical trials, establishing the principles for further improvement. To elucidate the antigenic determinants of the MenX capsular polysaccharide, we generated a monoclonal antibody, and its bactericidal nature was confirmed using the rabbit serum bactericidal assay. The antibody was tested by the inhibition enzyme-linked immunosorbent assay and surface plasmon resonance against a set of oligosaccharide fragments of different lengths. The epitope was shown to be contained within five to six α-(1-4) phosphodiester mannosamine repeating units. The molecular interactions between the protective monoclonal antibody and the MenX capsular polysaccharide fragment were further detailed at the atomic level by saturation transfer difference nuclear magnetic resonance (NMR) spectroscopy. The NMR results were used for validation of the in silico docking analysis between the X-ray crystal structure of the antibody (Fab fragment) and the modeled hexamer oligosaccharide. The antibody recognizes the MenX fragment by binding all six repeating units of the oligosaccharide via hydrogen bonding, salt bridges, and hydrophobic interactions. In vivo studies demonstrated that conjugates containing five to six repeating units can produce high functional antibody levels. These results provide an insight into the molecular basis of MenX vaccine-induced protection and highlight the requirements for the epitope-based vaccine design.
Insights
Serogroup X meningococcal disease is rising in Africa. Researchers identified the key epitope on the MenX polysaccharide, crucial for developing effective vaccines against this emerging threat.
Area of Science:
- Immunology
- Vaccinology
- Structural Biology
Background:
- Meningococcal disease caused by Neisseria meningitidis remains a public health concern.
- Serogroup X (MenX) has emerged as a significant cause of outbreaks, particularly in Africa, despite advances in glycoconjugate vaccines.
- Existing vaccines do not cover MenX, necessitating the development of new strategies.
Purpose of the Study:
- To elucidate the antigenic determinants of the MenX capsular polysaccharide.
- To understand the molecular basis of protective immune responses against MenX.
- To guide the rational design of novel MenX vaccines.
Main Methods:
- Generation and characterization of a bactericidal monoclonal antibody against MenX.
- Epitope mapping using inhibition ELISA and surface plasmon resonance with oligosaccharide fragments.
- Structural elucidation of antibody-epitope interactions using NMR spectroscopy and in silico docking.
- In vivo efficacy studies of MenX polysaccharide-protein conjugates.
Main Results:
- A protective monoclonal antibody was generated and confirmed to be bactericidal.
- The key epitope was localized to five to six α-(1-4) phosphodiester mannosamine repeating units.
- Detailed molecular interactions (hydrogen bonding, salt bridges, hydrophobic interactions) between the antibody and the epitope were elucidated.
- Conjugates with five to six repeating units induced high functional antibody levels in vivo.
Conclusions:
- The study defines the minimal repeating unit requirements for MenX epitope recognition.
- Provides critical insights into the molecular basis of vaccine-induced protection against MenX.
- Highlights the importance of epitope-based design for developing effective MenX vaccines.
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