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.

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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