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Updated: May 11, 2026

Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
Host cell-derived lactate functions as an effector molecule in Neisseria meningitidis microcolony dispersal
Sara Sigurlásdóttir1, Jakob Engman1, Olaspers Sara Eriksson1
1Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, Stockholm, Sweden.
Abstract:
The development of meningococcal disease, caused by the human pathogen Neisseria meningitidis, is preceded by the colonization of the epithelial layer in the nasopharynx. After initial adhesion to host cells meningococci form aggregates, through pilus-pilus interactions, termed microcolonies from which the bacteria later detach. Dispersal from microcolonies enables access to new colonization sites and facilitates the crossing of the cell barrier; however, this process is poorly understood. In this study, we used live-cell imaging to investigate the process of N. meningitidis microcolony dispersal. We show that direct contact with host cells is not required for microcolony dispersal, instead accumulation of a host-derived effector molecule induces microcolony dispersal. By using a host-cell free approach, we demonstrated that lactate, secreted from host cells, initiate rapid dispersal of microcolonies. Interestingly, metabolic utilization of lactate by the bacteria was not required for induction of dispersal, suggesting that lactate plays a role as a signaling molecule. Furthermore, Neisseria gonorrhoeae microcolony dispersal could also be induced by lactate. These findings reveal a role of host-secreted lactate in microcolony dispersal and virulence of pathogenic Neisseria.
Insights
Lactate, secreted by host cells, triggers the dispersal of Neisseria meningitidis microcolonies, facilitating bacterial spread. This host molecule acts as a signaling molecule, not a nutrient, for meningococcal disease progression.
Area of Science:
- Microbiology
- Pathogenesis
- Bacterial Adhesion
Background:
- Neisseria meningitidis colonizes the nasopharynx, forming microcolonies via pilus interactions.
- Bacterial dispersal from microcolonies is crucial for colonization and host barrier crossing but remains poorly understood.
Purpose of the Study:
- To investigate the mechanisms of Neisseria meningitidis microcolony dispersal.
- To identify host-derived factors involved in bacterial dispersal.
Main Methods:
- Live-cell imaging was employed to observe N. meningitidis microcolony dynamics.
- Host-cell free assays were utilized to test the effect of host-derived molecules on dispersal.
Main Results:
- Microcolony dispersal is induced by a host-derived molecule, not direct host cell contact.
- Lactate, secreted by host cells, was identified as the molecule initiating rapid microcolony dispersal.
- Lactate's role was confirmed as a signaling molecule, as metabolic utilization was not required for dispersal induction.
- Lactate also induced microcolony dispersal in Neisseria gonorrhoeae.
Conclusions:
- Host-secreted lactate is a key factor in pathogenic Neisseria microcolony dispersal.
- Lactate acts as a signaling molecule to promote bacterial virulence and spread.
- These findings offer new insights into the pathogenesis of Neisseria infections.
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