Conservation of meningococcal antigens in the genus Neisseria

Alessandro Muzzi1, Marirosa Mora, Mariagrazia Pizza

  • 1Novartis Vaccines and Diagnostics, Siena, Italy. alessandro.muzzi@novartis.com

Mbio
|June 14, 2013
PubMed

Insights

Vaccine antigens factor H-binding protein (fHbp), neisserial heparin-binding antigen (NHBA), and N. meningitidis adhesin A (NadA) are found in human commensal Neisseria species. Homologous recombination drives the evolution and distribution of these key vaccine components.

Area of Science:

  • Microbiology and Immunology
  • Bacterial Pathogenesis and Vaccines

Background:

  • Neisseria meningitidis is a significant cause of bacterial meningitis and sepsis.
  • Key antigens (fHbp, NHBA, NadA) are used in the 4CMenB vaccine (Bexsero®) against serogroup B N. meningitidis.
  • The potential impact of this vaccine on commensal Neisseria species warrants investigation due to close evolutionary relationships.

Purpose of the Study:

  • To determine the presence, distribution, and conservation of fHbp, NHBA, and NadA antigens in the genus Neisseria.
  • To understand the evolutionary history and mechanisms shaping the distribution of these vaccine antigens.
  • To assess the potential impact of the 4CMenB vaccine on commensal Neisseria populations.

Main Methods:

  • Bioinformatic analysis of available genome sequences of the genus Neisseria.
  • Sequence analysis to identify homologous recombination events.
  • Phylogenetic analysis to determine evolutionary relationships and origins of antigen variants.

Main Results:

  • fHbp, NHBA, and NadA are conserved primarily in Neisseria species that colonize humans.
  • GNA1030 and GNA2091, used as fusion partners, are conserved across a broader range of human and nonhuman Neisseria species.
  • Homologous recombination significantly influences the evolution and distribution of fHbp and NHBA, with evidence of interspecies gene transfer.

Conclusions:

  • The vaccine antigens fHbp, NHBA, and NadA are present in human commensal Neisseria, suggesting potential cross-reactivity or impact.
  • The evolutionary trajectory of these antigens is shaped by high rates of genetic exchange within the human upper respiratory tract.
  • Understanding antigen distribution and evolution is crucial for predicting and managing the long-term effects of vaccination strategies.

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