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The (alpha2-->8)-linked polysialic acid capsule of group B Neisseria meningitidis modifies multiple steps during
R C Read1, S Zimmerli, C Broaddus
1Division of Infectious Diseases, University of California, San Francisco, San Francisco General Hospital, 94110, USA.
Abstract:
Group B Neisseria meningitidis causes systemic disease, including meningitis, after initial colonization and subsequent penetration of nasopharyngeal mucosa, a tissue which is richly populated by macrophages. In an initial effort to characterize the interaction of N. meningitidis and mature human macrophages, the influence of the alpha2-->8) -linked polysialic acid capsule on the interaction of N. meningitidis with human monocyte-derived macrophages was investigated with a capsulate case isolate and an isogenic Tn916-derived noncapsulate transformant. The capsulate strain was fourfold less adherent to the macrophage surface after cold incubation, although adherence of both strains was significantly increased after opsonization with nonimmune C5-depleted serum. When opsonized inocula were adjusted so that they adhered to macrophages in equal numbers, the two strains were internalized at equivalent rates and both entered membrane-bound compartments (phagosomes). Colocalization of bacteria with the late endosomal and lysosomal marker lysosome-associated membrane protein revealed that fusion of lysosomes with phagosomes containing the capsulate organism was significantly reduced 10 and 30 min after entry, but by 1 h, no difference between the strains was observed. Once internalized, meningococci were effectively killed, although more rapid killing of the capsulate strain was observed over the first 3 h. These results indicate that the (alpha2-->8)-linked polysialic acid capsule modifies the interaction of meningococci with human macrophages at multiple steps, including adherence to the macrophage surface and phagosome-lysosome fusion. Moreover, the discordance between the kinetics of phagosome- lysosome fusion and bacterial killing suggests that a nonlysosomal mechanism may be responsible for a significant fraction of macrophage killing of N. meningitidis.
Insights
The polysialic acid capsule on Group B Neisseria meningitidis affects how bacteria interact with human macrophages, impacting adherence and phagosome-lysosome fusion, which influences bacterial killing.
Area of Science:
- Microbiology
- Immunology
- Cell Biology
Background:
- Neisseria meningitidis causes systemic diseases like meningitis.
- Macrophages in the nasopharyngeal mucosa are key immune cells involved in combating N. meningitidis.
- The role of the bacterial capsule in macrophage interaction is not fully understood.
Purpose of the Study:
- To investigate the influence of the alpha2-->8-linked polysialic acid capsule on the interaction between N. meningitidis and human monocyte-derived macrophages.
- To compare the adherence, internalization, and intracellular fate of capsulate and non-capsulate N. meningitidis strains within macrophages.
Main Methods:
- Used a capsulate Group B N. meningitidis strain and an isogenic non-capsulate transformant.
- Assessed bacterial adherence to macrophages under different conditions (cold incubation, opsonization).
- Quantified bacterial internalization and phagosome-lysosome fusion using colocalization with lysosome-associated membrane protein.
Main Results:
- The capsulate strain showed fourfold less adherence to macrophages in cold conditions.
- Both strains were internalized equally and entered phagosomes, but lysosome fusion was reduced for the capsulate strain initially.
- While both strains were killed, the capsulate strain experienced more rapid killing in the first 3 hours.
Conclusions:
- The polysialic acid capsule significantly modifies N. meningitidis interactions with macrophages, affecting adherence and phagosome-lysosome fusion.
- Bacterial killing appears to involve non-lysosomal mechanisms, as suggested by the discrepancy between fusion kinetics and killing rates.