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Published on: November 5, 2019
Genotypic and phenotypic modifications of Neisseria meningitidis after an accidental human passage
Hélène Omer1, Graham Rose, Keith A Jolley
1INSERM U1002, Paris, France.
Abstract:
A scientist in our laboratory was accidentally infected while working with Z5463, a Neisseria meningitidis serogroup A strain. She developed severe symptoms (fever, meningism, purpuric lesions) that fortunately evolved with antibiotic treatment to complete recovery. Pulse-field gel electrophoresis confirmed that the isolate obtained from the blood culture (Z5463BC) was identical to Z5463, more precisely to a fourth subculture of this strain used the week before the contamination (Z5463PI). In order to get some insights into genomic modifications that can occur in vivo, we sequenced these three isolates. All the strains contained a mutated mutS allele and therefore displayed an hypermutator phenotype, consistent with the high number of mutations (SNP, Single Nucleotide Polymorphism) detected in the three strains. By comparing the number of SNP in all three isolates and knowing the number of passages between Z5463 and Z5463PI, we concluded that around 25 bacterial divisions occurred in the human body. As expected, the in vivo passage is responsible for several modifications of phase variable genes. This genomic study has been completed by transcriptomic and phenotypic studies, showing that the blood strain used a different haemoglobin-linked iron receptor (HpuA/B) than the parental strains (HmbR). Different pilin variants were found after the in vivo passage, which expressed different properties of adhesion. Furthermore the deletion of one gene involved in LOS biosynthesis (lgtB) results in Z5463BC expressing a different LOS than the L9 immunotype of Z2491. The in vivo passage, despite the small numbers of divisions, permits the selection of numerous genomic modifications that may account for the high capacity of the strain to disseminate.
Insights
A Neisseria meningitidis infection in a scientist revealed rapid genomic changes during human passage. The bacteria acquired mutations, altered gene expression, and modified surface structures, potentially enhancing its ability to spread.
Area of Science:
- Genomics and microbiology, focusing on bacterial adaptation and pathogenesis.
Background:
- Neisseria meningitidis serogroup A is a significant cause of bacterial meningitis.
- Understanding in vivo bacterial evolution is crucial for predicting and controlling infectious disease outbreaks.
Observation:
- A laboratory accident led to human infection with a Neisseria meningitidis strain (Z5463).
- Genomic sequencing of isolates before and after human passage revealed significant modifications.
Findings:
- The bacterium exhibited a hypermutator phenotype due to a mutated mutS allele, leading to numerous single nucleotide polymorphisms (SNPs).
- In vivo passage resulted in altered expression of iron uptake systems (HpuA/B vs. HmbR) and different pilin variants affecting adhesion.
- A deletion in the lgtB gene altered lipooligosaccharide (LOS) biosynthesis, differentiating the blood isolate from the parental strain.
Implications:
- Even a limited number of bacterial divisions in vivo can drive substantial genomic and phenotypic changes.
- These modifications may explain the strain's enhanced capacity for dissemination and underscore the importance of rapid genomic surveillance.
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