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Updated: May 13, 2026

In vivo Evaluation of Mucociliary Clearance in Mice
Published on: December 18, 2020
Mucociliary clearance defects in a murine in vitro model of pneumococcal airway infection
Manfred Fliegauf1, Andreas F-P Sonnen, Bernhard Kremer
1Centre of Chronic Immunodeficiency, University Medical Centre Freiburg and University of Freiburg, Freiburg, Germany. manfred.fliegauf@uniklinik-freiburg.de
Abstract:
Mucociliary airway clearance is an innate defense mechanism that protects the lung from harmful effects of inhaled pathogens. In order to escape mechanical clearance, airway pathogens including Streptococcus pneumoniae (pneumococcus) are thought to inactivate mucociliary clearance by mechanisms such as slowing of ciliary beating and lytic damage of epithelial cells. Pore-forming toxins like pneumolysin, may be instrumental in these processes. In a murine in vitro airway infection model using tracheal epithelial cells grown in air-liquid interface cultures, we investigated the functional consequences on the ciliated respiratory epithelium when the first contact with pneumococci is established. High-speed video microscopy and live-cell imaging showed that the apical infection with both wildtype and pneumolysin-deficient pneumococci caused insufficient fluid flow along the epithelial surface and loss of efficient clearance, whereas ciliary beat frequency remained within the normal range. Three-dimensional confocal microscopy demonstrated that pneumococci caused specific morphologic aberrations of two key elements in the F-actin cytoskeleton: the junctional F-actin at the apical cortex of the lateral cell borders and the apical F-actin, localized within the planes of the apical cell sides at the ciliary bases. The lesions affected the columnar shape of the polarized respiratory epithelial cells. In addition, the planar architecture of the entire ciliated respiratory epithelium was irregularly distorted. Our observations indicate that the mechanical supports essential for both effective cilia strokes and stability of the epithelial barrier were weakened. We provide a new model, where--in pneumococcal infection--persistent ciliary beating generates turbulent fluid flow at non-planar distorted epithelial surface areas, which enables pneumococci to resist mechanical cilia-mediated clearance.
Insights
Streptococcus pneumoniae disrupts lung defenses by altering airway epithelial cell structure, not ciliary beating. This distortion creates turbulent airflow, allowing bacteria to evade clearance mechanisms.
Area of Science:
- Respiratory biology
- Microbiology
- Cell biology
Background:
- Mucociliary clearance is a crucial lung defense against inhaled pathogens.
- Airway pathogens like Streptococcus pneumoniae (pneumococcus) may evade clearance by damaging epithelial cells.
- Pneumolysin, a pore-forming toxin, is a potential mechanism for this damage.
Purpose of the Study:
- To investigate how initial pneumococcal contact affects the ciliated respiratory epithelium.
- To understand the functional consequences of pneumococcal infection on mucociliary clearance.
- To elucidate the role of pneumolysin in pneumococcal-induced airway damage.
Main Methods:
- Murine in vitro airway infection model using tracheal epithelial cells in air-liquid interface cultures.
- High-speed video microscopy and live-cell imaging to assess ciliary function and fluid flow.
- Three-dimensional confocal microscopy to analyze F-actin cytoskeleton morphology.
Main Results:
- Pneumococcal infection, with or without pneumolysin, impaired fluid flow and clearance efficiency.
- Ciliary beat frequency remained normal, indicating clearance issues were not due to slowed beating.
- Pneumococci induced structural aberrations in F-actin cytoskeleton, affecting cell shape and epithelial architecture.
- Weakened mechanical supports compromised ciliary stroke efficiency and epithelial barrier stability.
Conclusions:
- Pneumococcal infection distorts the respiratory epithelium's planar architecture, weakening mechanical supports.
- Altered epithelial surface leads to turbulent airflow despite normal ciliary beating.
- This turbulent flow facilitates pneumococcal resistance to mechanical clearance, presenting a novel evasion model.

