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Updated: Nov 24, 2025

Preparation, Imaging, and Quantification of Bacterial Surface Motility Assays
Published on: April 7, 2015
Identification of cell-surface glycans that mediate motility-dependent binding and internalization of Pseudomonas
Hector Sanchez1, Daniel Hopkins1, Sally Demirdjian1
1Department of Microbiology and Immunology, Geisel School of Medicine at Dartmouth, Lebanon, NH, 03756, USA.
Abstract:
Phagocytic cells are critical to host defense against Pseudomonas aeruginosa, a Gram-negative bacterium that is an opportunistic pathogen. Accordingly, susceptible individuals frequently have impaired innate immune responses, including those with cystic fibrosis or neutropenia. Previous studies identified that the downregulation, or loss, of bacterial flagellar motility enables bacteria to evade interactions with phagocytic cells that result in phagocytic uptake of the bacteria. However, the mechanistic bases for motility-dependent interactions between P. aeruginosa and host cell surfaces that lead to phagocytic uptake of the bacteria are poorly understood. A recent insight is that exogenous addition of a negatively charged phospholipid, phosphatidylinositol-(3,4,5)-triphosphate (PIP3), promotes the engagement of non-motile strains of P. aeruginosa with phagocytes leading to uptake of the bacteria. Thus, we hypothesized that the engagement of P. aeruginosa by phagocytic cells is mediated by motility-dependent interactions with cell-surface polyanions. Here we report that endogenous polyanionic N-linked glycans and heparan sulfate mediate bacterial binding of P. aeruginosa by human monocytic cells. These specific interactions resulted in P. aeruginosa phagocytosis, bacterial type 3 secretion system (T3SS)-mediated cellular intoxication and the IL-1β response of host innate immune cells. Importantly, the bacterial interactions with the glycans were motility-dependent and could be recapitulated with purified, immobilized glycans. Therefore, this work describes novel interactions of P. aeruginosa with specific phagocyte cell-surface glycans that modulate relevant host innate immune responses to the bacteria, including phagocytosis, inflammation and cytotoxicity.
Insights
Pseudomonas aeruginosa evades immune cells by losing motility. This study reveals motility-dependent interactions with host cell glycans mediate bacterial binding, phagocytosis, and immune responses.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Phagocytic cells are crucial for defense against Pseudomonas aeruginosa, an opportunistic pathogen.
- Impaired innate immunity, seen in cystic fibrosis or neutropenia, increases susceptibility.
- Bacterial flagellar motility loss aids evasion of phagocytic cells.
Purpose of the Study:
- To elucidate the mechanisms of motility-dependent interactions between P. aeruginosa and host cells.
- To investigate the role of cell-surface polyanions in P. aeruginosa engagement with phagocytes.
- To understand how these interactions influence host innate immune responses.
Main Methods:
- Investigated bacterial binding to human monocytic cells.
- Utilized purified, immobilized glycans to study interactions.
- Assessed P. aeruginosa phagocytosis, type 3 secretion system (T3SS) activity, and IL-1β response.
Main Results:
- Endogenous N-linked glycans and heparan sulfate mediate P. aeruginosa binding to phagocytes.
- These interactions are motility-dependent.
- Observed P. aeruginosa phagocytosis, T3SS-mediated intoxication, and IL-1β release.
Conclusions:
- P. aeruginosa engages phagocytes via motility-dependent interactions with specific cell-surface glycans.
- These interactions modulate key host innate immune responses: phagocytosis, inflammation, and cytotoxicity.
- Identified novel pathways influencing P. aeruginosa pathogenesis and host defense.
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