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Published on: April 1, 2014
Proteins associated with environmental survival of the pathogen Neisseria meningitidis
Claire Swain1,2, Sarah Reed3, Joanna Katherine MacKichan1
1Centre for Biodiscovery and School of Biological Sciences, https://ror.org/0040r6f76Victoria University of Wellington, Wellington, New Zealand.
Abstract:
Previously, we reported the persistence of the bacterial pathogen Neisseria meningitidis on fomites, indicating a potential route for environmental transmission. The current goal was to identify proteins that vary among strains of meningococci that have differing environmental survival. We carried out a proteomic analysis of two strains that differ in their potential for survival outside the host. The Group B epidemic strain NZ98/254 and Group W carriage strain H34 were cultured either at 36 °C, 5% CO2, and 95% relative humidity (RH) corresponding to host conditions in the nasopharynx, or at lower humidities of 22% or 30% RH at 30 °C, for which there was greater survival on fomites. For NZ98/254, the shift to lower RH and temperature was associated with increased abundance of proteins involved in metabolism, stress responses, and outer membrane components, including pili and porins. In contrast, H34 responded to lower RH by decreasing the abundance of multiple proteins, indicating that the lower viability of H34 may be linked to decreased capacity to mount core protective responses. The results provide a snapshot of bacterial proteins and metabolism that may be related to normal fitness, to the greater environmental persistence of NZ98/254 compared to H34, and potentially to differences in transmission and pathogenicity.
Insights
Neisseria meningitidis environmental survival varies by strain. Proteomics revealed that a persistent strain upregulated stress and outer membrane proteins, while a less persistent strain decreased protein abundance under low humidity, impacting its viability.
Area of Science:
- Microbiology
- Proteomics
- Environmental Health
Background:
- Neisseria meningitidis persistence on fomites suggests environmental transmission routes.
- Understanding strain-specific survival mechanisms is crucial for controlling meningococcal disease.
Purpose of the Study:
- Identify proteins differing between Neisseria meningitidis strains with distinct environmental survival capabilities.
- Investigate proteomic responses to varying humidity and temperature conditions.
Main Methods:
- Proteomic analysis of two Neisseria meningitidis strains (epidemic NZ98/254 and carriage H34).
- Culturing strains under host-like conditions (36°C, 5% CO2, 95% RH) versus lower humidity (22-30% RH) and temperature (30°C).
Main Results:
- Strain NZ98/254 increased metabolism, stress response, and outer membrane proteins (pili, porins) at lower RH and temperature.
- Strain H34 decreased abundance of multiple proteins under low humidity, suggesting reduced protective responses.
- Significant differences in protein expression correlate with observed variations in environmental persistence.
Conclusions:
- Bacterial protein and metabolic profiles are linked to Neisseria meningitidis environmental fitness and persistence.
- Differential protein expression may explain variations in survival, transmission, and pathogenicity between meningococcal strains.
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