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Updated: Apr 21, 2026

Evaluation of Host-Pathogen Responses and Vaccine Efficacy in Mice
Published on: February 22, 2019
Bordetella pertussis naturally occurring isolates with altered lipooligosaccharide structure fail to fully mature
Jolanda Brummelman1, Rosanne E Veerman1, Hendrik Jan Hamstra1
1Centre for Infectious Disease Control, National Institute for Public Health and the Environment, Bilthoven, The Netherlands.
Abstract:
Bordetella pertussis is a Gram-negative bacterium and the causative agent of whooping cough. Despite high vaccination coverage, outbreaks are being increasingly reported worldwide. Possible explanations include adaptation of this pathogen, which may interfere with recognition by the innate immune system. Here, we describe innate immune recognition and responses to different B. pertussis clinical isolates. By using HEK-Blue cells transfected with different pattern recognition receptors, we found that 3 out of 19 clinical isolates failed to activate Toll-like receptor 4 (TLR4). These findings were confirmed by using the monocytic MM6 cell line. Although incubation with high concentrations of these 3 strains resulted in significant activation of the MM6 cells, it was found to occur mainly through interaction with TLR2 and not through TLR4. When using live bacteria, these 3 strains also failed to activate TLR4 on HEK-Blue cells, and activation of MM6 cells or human monocyte-derived dendritic cells was significantly lower than activation induced by the other 16 strains. Mass spectrum analysis of the lipid A moieties from these 3 strains indicated an altered structure of this molecule. Gene sequence analysis revealed mutations in genes involved in lipid A synthesis. Findings from this study indicate that B. pertussis isolates that do not activate TLR4 occur naturally and that this phenotype may give this bacterium an advantage in tempering the innate immune response and establishing infection. Knowledge on the strategies used by this pathogen in evading the host immune response is essential for the improvement of current vaccines or for the development of new ones.
Insights
Some Bordetella pertussis strains evade immune detection by altering their structure, leading to whooping cough outbreaks. This study identifies specific bacterial isolates that do not activate Toll-like receptor 4 (TLR4), impacting innate immunity.
Area of Science:
- Immunology
- Microbiology
- Bacteriology
Background:
- Bordetella pertussis causes whooping cough, with increasing global outbreaks despite vaccination.
- Pathogen adaptation may hinder innate immune system recognition.
- Understanding immune evasion is crucial for vaccine development.
Purpose of the Study:
- To investigate innate immune recognition and responses to clinical isolates of Bordetella pertussis.
- To identify B. pertussis strains that evade Toll-like receptor 4 (TLR4) activation.
- To elucidate the mechanisms behind immune evasion.
Main Methods:
- Utilized HEK-Blue cells with pattern recognition receptors and monocytic MM6 cell lines.
- Assessed immune cell activation upon exposure to different B. pertussis clinical isolates.
- Performed mass spectrum and gene sequence analysis on bacterial lipid A and synthesis pathways.
Main Results:
- Three out of 19 clinical isolates failed to activate TLR4.
- These isolates primarily activated TLR2, not TLR4, in MM6 cells.
- Altered lipid A structure and mutations in lipid A synthesis genes were observed in these immune-evading strains.
Conclusions:
- Naturally occurring B. pertussis isolates can evade TLR4-mediated innate immune recognition.
- This immune evasion phenotype may facilitate bacterial infection and persistence.
- Identifying bacterial strategies for evading host immunity is vital for enhancing pertussis vaccines.
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