Related Experiment Video
Updated: Aug 19, 2026

Inducing Meningococcal Meningitis Serogroup C in Mice via Intracisternal Delivery
Published on: November 5, 2019
Stability of PorA during a meningococcal disease epidemic
A F Devoy1, K H Dyet, D R Martin
1Communicable Disease Group, Institute of Environmental Science and Research, Porirua, New Zealand.
Abstract:
Meningococci causing New Zealand's epidemic, which began in 1991, are defined as group B, serosubtype P1.4 (subtype P1.7-2,4), belonging to the ST-41/ST-44 complex, lineage III. Of the 2,358 group B isolates obtained from disease cases from 1991 through 2003, 85.7% (2,021 of 2,358) were determined to be serosubtype P1.4. Of the remaining isolates, 156 (6.6%) were not serosubtypeable (NST). Molecular analysis of the porA gene from these B:NST meningococcal isolates was used to determine the reason. Most NST isolates (156, 88.5%) expressed a PorA that was distinct from P1.7-2,4 PorA. Fifteen isolates expressed variants of P1.7-2,4 PorA, and a further three expressed P1.7-2,4 PorA without any sequence variation. These three isolates expressed P1.7-2,4 PorA at very low levels, as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis, and showed variation in the porA promoter region. Among the 15 meningococcal isolates expressing variants of P1.7-2,4 PorA, 11 different sequence variations were found. Compared with the P1.7-2,4 PorA sequence, the sequences of these variants contained deletions, insertions, or single-nucleotide substitutions in the VR2 region of the protein. Multilocus restriction typing was used to assess the clonal derivations of B:NST case isolates. Meningococcal isolates expressing distinct PorA proteins belonged mostly to clonal types that were unrelated to the epidemic strain, whereas all meningococcal isolates expressing variants of P1.7-2,4 PorA belonged to the ST-41/ST-44 complex, lineage III. These results, together with those obtained serologically, demonstrate that the P1.7-2,4 PorA protein of meningococci responsible for New Zealand's epidemic has remained relatively stable over 13 years and support the use of a strain-specific outer membrane vesicle vaccine to control the epidemic.
Insights
Group B meningococci causing New Zealand's epidemic remained stable over 13 years. Analysis of the P1.7-2,4 PorA protein supports a strain-specific vaccine for epidemic control.
Area of Science:
- Microbiology
- Epidemiology
- Vaccinology
Background:
- New Zealand experienced a prolonged epidemic of group B meningococcal disease starting in 1991.
- The epidemic strain was characterized as serosubtype P1.4, belonging to the ST-41/ST-44 complex, lineage III.
Purpose of the Study:
- To investigate the genetic basis of non-serosubtypeable (NST) group B meningococcal isolates.
- To assess the stability of the P1.7-2,4 PorA protein during the New Zealand epidemic.
- To evaluate the suitability of a strain-specific outer membrane vesicle vaccine.
Main Methods:
- Molecular analysis of the porA gene in 156 B:NST meningococcal isolates.
- Sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) to determine PorA expression levels.
- Multilocus restriction typing to assess clonal origins of B:NST isolates.
Main Results:
- Most B:NST isolates expressed a PorA protein distinct from P1.7-2,4.
- Fifteen isolates expressed variants of P1.7-2,4 PorA, with 11 distinct sequence variations in the VR2 region.
- Three isolates expressed P1.7-2,4 PorA at low levels due to porA promoter region variations.
- Isolates with distinct PorA proteins were largely unrelated to the epidemic strain, while variants of P1.7-2,4 PorA belonged to the epidemic clonal complex.
Conclusions:
- The P1.7-2,4 PorA protein of the epidemic meningococcal strain in New Zealand has shown remarkable stability over 13 years.
- Molecular and serological data support the use of a strain-specific outer membrane vesicle vaccine for controlling the epidemic.
Related Concept Videos
Bacterial Meningitis II: Pathophysiology
Bacterial Meningitis I: Introduction
Bacterial Meningitis
Viral Meningitis
Malaria
Mechanism of Antibiotic Resistance in MRSA
