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Published on: November 5, 2019
Comparative Genome Sequencing Reveals Within-Host Genetic Changes in Neisseria meningitidis during Invasive Disease
Johanna Klughammer1,2, Marcus Dittrich3,4, Jochen Blom5
1CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna, Austria.
Abstract:
Some members of the physiological human microbiome occasionally cause life-threatening disease even in immunocompetent individuals. A prime example of such a commensal pathogen is Neisseria meningitidis, which normally resides in the human nasopharynx but is also a leading cause of sepsis and epidemic meningitis. Using N. meningitidis as model organism, we tested the hypothesis that virulence of commensal pathogens is a consequence of within host evolution and selection of invasive variants due to mutations at contingency genes, a mechanism called phase variation. In line with the hypothesis that phase variation evolved as an adaptation to colonize diverse hosts, computational comparisons of all 27 to date completely sequenced and annotated meningococcal genomes retrieved from public databases showed that contingency genes are indeed enriched for genes involved in host interactions. To assess within-host genetic changes in meningococci, we further used ultra-deep whole-genome sequencing of throat-blood strain pairs isolated from four patients suffering from invasive meningococcal disease. We detected up to three mutations per strain pair, affecting predominantly contingency genes involved in type IV pilus biogenesis. However, there was not a single (set) of mutation(s) that could invariably be found in all four pairs of strains. Phenotypic assays further showed that these genetic changes were generally not associated with increased serum resistance, higher fitness in human blood ex vivo or differences in the interaction with human epithelial and endothelial cells in vitro. In conclusion, we hypothesize that virulence of meningococci results from accidental emergence of invasive variants during carriage and without within host evolution of invasive phenotypes during disease progression in vivo.
Insights
Virulence in Neisseria meningitidis, a common bacterium, may not stem from within-host evolution. Invasive variants likely emerge accidentally during carriage, not through adaptation during disease.
Area of Science:
- Microbiology
- Genetics
- Pathogenesis
Background:
- The human microbiome harbors commensal bacteria, such as Neisseria meningitidis, which can cause severe diseases like meningitis and sepsis.
- Neisseria meningitidis normally resides in the nasopharynx but poses a significant public health threat.
Purpose of the Study:
- To investigate if the virulence of commensal pathogens, using Neisseria meningitidis as a model, arises from within-host evolution and selection of invasive variants.
- To explore the role of phase variation, driven by mutations in contingency genes, in the development of pathogen virulence.
Main Methods:
- Comparative genomics of 27 Neisseria meningitidis genomes to identify enriched contingency genes.
- Ultra-deep whole-genome sequencing of throat-blood strain pairs from four patients with invasive meningococcal disease.
- Phenotypic assays to evaluate serum resistance, ex vivo blood fitness, and host cell interactions.
Main Results:
- Contingency genes involved in host interactions were enriched in meningococcal genomes.
- Up to three mutations per strain pair were detected, primarily in contingency genes for type IV pilus biogenesis.
- No consistent mutations or significant phenotypic changes associated with increased virulence were observed across all patient strain pairs.
Conclusions:
- Within-host evolution and selection of invasive phenotypes during disease progression in vivo do not appear to drive Neisseria meningitidis virulence.
- The emergence of invasive Neisseria meningitidis variants may be accidental, occurring during the carriage phase rather than through adaptation during infection.

