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Inducing Meningococcal Meningitis Serogroup C in Mice via Intracisternal Delivery
Published on: November 5, 2019
Meningococcal genetic variation mechanisms viewed through comparative analysis of serogroup C strain FAM18
Stephen D Bentley1, George S Vernikos, Lori A S Snyder
1Wellcome Trust Sanger Institute, Hinxton, United Kingdom. sdb@sanger.ac.uk
Abstract:
The bacterium Neisseria meningitidis is commonly found harmlessly colonising the mucosal surfaces of the human nasopharynx. Occasionally strains can invade host tissues causing septicaemia and meningitis, making the bacterium a major cause of morbidity and mortality in both the developed and developing world. The species is known to be diverse in many ways, as a product of its natural transformability and of a range of recombination and mutation-based systems. Previous work on pathogenic Neisseria has identified several mechanisms for the generation of diversity of surface structures, including phase variation based on slippage-like mechanisms and sequence conversion of expressed genes using information from silent loci. Comparison of the genome sequences of two N. meningitidis strains, serogroup B MC58 and serogroup A Z2491, suggested further mechanisms of variation, including C-terminal exchange in specific genes and enhanced localised recombination and variation related to repeat arrays. We have sequenced the genome of N. meningitidis strain FAM18, a representative of the ST-11/ET-37 complex, providing the first genome sequence for the disease-causing serogroup C meningococci; it has 1,976 predicted genes, of which 60 do not have orthologues in the previously sequenced serogroup A or B strains. Through genome comparison with Z2491 and MC58 we have further characterised specific mechanisms of genetic variation in N. meningitidis, describing specialised loci for generation of cell surface protein variants and measuring the association between noncoding repeat arrays and sequence variation in flanking genes. Here we provide a detailed view of novel genetic diversification mechanisms in N. meningitidis. Our analysis provides evidence for the hypothesis that the noncoding repeat arrays in neisserial genomes (neisserial intergenic mosaic elements) provide a crucial mechanism for the generation of surface antigen variants. Such variation will have an impact on the interaction with the host tissues, and understanding these mechanisms is important to aid our understanding of the intimate and complex relationship between the human nasopharynx and the meningococcus.
Insights
Neisseria meningitidis diversifies surface antigens through novel genetic mechanisms, particularly noncoding repeat arrays. Understanding this variation is key to Neisseria meningitidis-host interactions.
Area of Science:
- Microbiology
- Genetics
- Genomics
Background:
- Neisseria meningitidis causes severe disease like meningitis and septicaemia.
- The bacterium exhibits significant genetic diversity, contributing to its pathogenicity.
- Existing knowledge points to phase variation and gene conversion as key diversity generators.
Purpose of the Study:
- To sequence and analyze the genome of Neisseria meningitidis strain FAM18 (serogroup C).
- To identify and characterize novel genetic mechanisms driving Neisseria meningitidis diversity.
- To investigate the role of noncoding repeat arrays in generating surface antigen variation.
Main Methods:
- Whole-genome sequencing of Neisseria meningitidis strain FAM18.
- Comparative genomics analysis with existing Neisseria meningitidis genomes (serogroups A and B).
- Identification and characterization of genetic loci associated with variation.
Main Results:
- Genome sequencing of FAM18 revealed 1,976 predicted genes, with 60 unique to this strain.
- Detailed characterization of specific genetic variation mechanisms, including C-terminal exchange and repeat array-associated variation.
- Evidence supporting noncoding repeat arrays (neisserial intergenic mosaic elements) as crucial for generating surface antigen variants.
Conclusions:
- Neisseria meningitidis employs novel genetic mechanisms for diversification.
- Noncoding repeat arrays are identified as a significant driver of surface antigen variation.
- Understanding these mechanisms is vital for comprehending Neisseria meningitidis-host interactions and pathogenicity.
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