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Sweet complexity: O-linked protein glycosylation in pathogenic Neisseria
1Department of Bacteriology, Division for Infection Control and Environmental Health, Norwegian Institute of Public Health, Oslo, Norway.
Abstract:
The genus Neisseria, which colonizes mucosal surfaces, includes both commensal and pathogenic species that are exclusive to humans. The two pathogenic Neisseria species are closely related but cause quite different diseases, meningococcal sepsis and meningitis (Neisseria meningitidis) and sexually transmitted gonorrhea (Neisseria gonorrhoeae). Although obvious differences in bacterial niches and mechanisms for transmission exists, pathogenic Neisseria have high levels of conservation at the levels of nucleotide sequences, gene content and synteny. Species of Neisseria express broad-spectrum O-linked protein glycosylation where the glycoproteins are largely transmembrane proteins or lipoproteins localized on the cell surface or in the periplasm. There are diverse functions among the identified glycoproteins, for example type IV biogenesis proteins, proteins involved in antimicrobial resistance, as well as surface proteins that have been suggested as vaccine candidates. The most abundant glycoprotein, PilE, is the major subunit of pili which are an important colonization factor. The glycans attached can vary extensively due to phase variation of protein glycosylation (pgl) genes and polymorphic pgl gene content. The exact roles of glycosylation in Neisseria remains to be determined, but increasing evidence suggests that glycan variability can be a strategy to evade the human immune system. In addition, pathogenic and commensal Neisseria appear to have significant glycosylation differences. Here, the current knowledge and implications of protein glycosylation genes, glycan diversity, glycoproteins and immunogenicity in pathogenic Neisseria are summarized and discussed.
Insights
Neisseria bacteria utilize O-linked protein glycosylation, leading to diverse surface glycoproteins. Glycan variability in Neisseria may help evade the human immune system, with differences noted between pathogenic and commensal species.
Area of Science:
- Microbiology
- Molecular Biology
- Immunology
Background:
- The genus Neisseria includes human-specific commensal and pathogenic species.
- Pathogenic Neisseria (Neisseria meningitidis and Neisseria gonorrhoeae) cause distinct diseases despite genetic conservation.
- Neisseria species exhibit O-linked protein glycosylation, producing diverse surface glycoproteins.
Purpose of the Study:
- To summarize current knowledge on protein glycosylation in pathogenic Neisseria.
- To discuss the implications of glycosylation genes, glycan diversity, glycoproteins, and immunogenicity.
Main Methods:
- Review of existing literature on Neisseria protein glycosylation.
- Analysis of gene content, sequence conservation, and protein localization.
- Examination of glycan variability and its potential role in immune evasion.
Main Results:
- Neisseria glycoproteins include transmembrane proteins and lipoproteins involved in various functions, such as pili formation (PilE) and antimicrobial resistance.
- Extensive glycan variation occurs due to phase variation of protein glycosylation (pgl) genes and polymorphic pgl gene content.
- Significant differences in glycosylation exist between pathogenic and commensal Neisseria species.
Conclusions:
- Protein glycosylation is a significant feature in Neisseria, contributing to surface protein diversity.
- Glycan variability is a potential strategy for Neisseria to evade the human immune system.
- Further research is needed to fully elucidate the roles of glycosylation in Neisseria pathogenesis and host interactions.
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