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Infection of Zebrafish Embryos with Intracellular Bacterial Pathogens
Published on: March 15, 2012
Meningococcal virulence in zebrafish embryos depends on capsule polysaccharide structure
Kim Schipper1, Lisanne C Preusting1, Nina M van Sorge1
1Amsterdam University Medical Centers, Location University of Amsterdam, Amsterdam Infection Immunity, Department of Medical Microbiology and Infection Prevention Netherlands Reference Laboratory for Bacterial Meningitis, Location AMC, Amsterdam, Netherlands.
Abstract:
Neisseria meningitidis or the meningococcus, can cause devasting diseases such as sepsis and meningitis. Its polysaccharide capsule, on which serogrouping is based, is the most important virulence factor. Non-encapsulated meningococci only rarely cause disease, due to their sensitivity to the host complement system. How the capsular polysaccharide structure of N. meningitidis relates to virulence is largely unknown. Meningococcal virulence can be modeled in zebrafish embryos as the innate immune system of the zebrafish embryo resembles that of mammals and is fully functional two days post-fertilization. In contrast, the adaptive immune system does not develop before 4 weeks post-fertilization. We generated isogenic meningococcal serogroup variants to study how the chemical composition of the polysaccharide capsule affects N. meningitidis virulence in the zebrafish embryo model. H44/76 serogroup B killed zebrafish embryos in a dose-dependent manner, whereas the non-encapsulated variant was completely avirulent. Neutrophil depletion was observed after infection with encapsulated H44/76, but not with its non-encapsulated variant HB-1. The survival of embryos infected with isogenic capsule variants of H44/76 was capsule specific. The amount of neutrophil depletion differed accordingly. Both embryo killing capacity and neutrophil depletion after infection correlated with the number of carbons used per repeat unit of the capsule polysaccharide during its biosynthesis (indicative of metabolic cost).
Conclusion:
Meningococcal virulence in the zebrafish embryo largely depends on the presence of the polysaccharide capsule but the extent of the contribution is determined by its structure. The observed differences between the meningococcal isogenic capsule variants in zebrafish embryo virulence may depend on differences in metabolic cost.
Insights
The structure of the Neisseria meningitidis (meningococcus) capsule influences its virulence. Capsule structure affects zebrafish embryo survival and neutrophil depletion, potentially linked to metabolic cost during biosynthesis.
Area of Science:
- Microbiology
- Immunology
- Zebrafish disease models
Background:
- Neisseria meningitidis causes severe diseases like meningitis and sepsis.
- The polysaccharide capsule is a key virulence factor, but its structural impact on virulence is poorly understood.
- Zebrafish embryos offer a suitable model for studying meningococcal virulence due to their developed innate immune system.
Purpose of the Study:
- To investigate the relationship between meningococcal capsular polysaccharide structure and virulence.
- To analyze how capsule chemical composition affects N. meningitidis pathogenicity in a zebrafish embryo model.
Main Methods:
- Generation of isogenic N. meningitidis serogroup variants.
- Infection of zebrafish embryos with encapsulated and non-encapsulated meningococci.
- Assessment of embryo survival and neutrophil depletion post-infection.
Main Results:
- Encapsulated serogroup B N. meningitidis (H44/76) killed zebrafish embryos dose-dependently.
- Non-encapsulated variants were avirulent, and neutrophil depletion was observed only with encapsulated strains.
- Virulence and neutrophil depletion correlated with the metabolic cost (number of carbons per repeat unit) of capsule biosynthesis.
Conclusions:
- Meningococcal virulence in zebrafish embryos is capsule-dependent, with structure playing a critical role.
- Differences in virulence among capsule variants may be related to the metabolic cost of polysaccharide production.

