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Updated: May 18, 2026

Induction of Leptomeningeal Cells Modification Via Intracisternal Injection
Published on: May 7, 2020
Meningococcal PilV potentiates Neisseria meningitidis type IV pilus-mediated internalization into human endothelial
Hideyuki Takahashi1, Tatsuo Yanagisawa, Kwang Sik Kim
1Department of Bacteriology I, National Institute of Infectious Diseases, Tokyo, Japan. hideyuki@nih.go.jp
Abstract:
The type IV pilus of Neisseria meningitidis is the major factor for meningococcal adhesion to host cells. In this study, we showed that a mutant of N. meningitidis pilV, a minor pilin protein, internalized less efficiently to human endothelial and epithelial cells than the wild-type strain. Matrix-assisted laser desorption ionization-time of flight mass spectrometry and electrospray ionization tandem mass spectrometry analyses showed that PilE, the major subunit of pili, was less glycosylated at its serine 62 residue (Ser62) in the ΔpilV mutant than in the pilV(+) strain, whereas phosphoglycerol at PilE Ser93 and phosphocholine at PilE Ser67 were not changed. Introduction of the pglL mutation, which results in complete loss of O-linked glycosylation from Ser62, slightly reduced N. meningitidis internalization into human brain microvascular endothelial cells, whereas the addition of the ΔpilV mutation greatly reduced N. meningitidis internalization. The accumulation of ezrin, which is part of the cytoskeleton ERM family, was observed with pilV(+), ΔpglL, and pilE(S62A) strains but not with the ΔpilV mutant. These results suggested that whereas N. meningitidis pilin originally had an adhesive activity that was less affected by minor pilin proteins, the invasive function evolved with incorporation of the PilV protein into the pili to promote the N. meningitidis internalization into human cells.
Insights
The minor pilin protein PilV enhances Neisseria meningitidis internalization into host cells by affecting glycosylation of the major pilin PilE. Loss of PilV significantly reduces bacterial invasion, highlighting its role in meningococcal pathogenesis.
Area of Science:
- Microbiology
- Cell Biology
- Bacterial Pathogenesis
Background:
- Type IV pilus is crucial for Neisseria meningitidis adhesion to host cells.
- Minor pilin proteins can modulate the function of major pilins.
Purpose of the Study:
- To investigate the role of the minor pilin PilV in N. meningitidis internalization.
- To determine the effect of PilV on the glycosylation of the major pilin PilE.
Main Methods:
- Generation and characterization of N. meningitidis mutants (ΔpilV, ΔpglL, pilE(S62A)).
- Analysis of bacterial internalization into human endothelial and epithelial cells.
- Mass spectrometry (MALDI-TOF, ESI-MS/MS) to assess pilin glycosylation.
- Immunofluorescence microscopy to detect cytoskeletal protein ezrin.
Main Results:
- A ΔpilV mutant showed significantly reduced internalization compared to the wild-type strain.
- PilE glycosylation at Ser62 was decreased in the ΔpilV mutant.
- Loss of O-linked glycosylation (ΔpglL) slightly reduced internalization, but the ΔpilV mutation had a greater effect.
- Ezrin accumulation, indicative of host cell remodeling, was impaired in the ΔpilV mutant.
Conclusions:
- PilV is essential for efficient N. meningitidis internalization into host cells.
- PilV influences the glycosylation of PilE at Ser62, contributing to invasive function.
- The invasive capability of N. meningitidis evolved with the incorporation of PilV into type IV pili.
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