Related Experiment Video
Updated: Jun 19, 2026

Determining Ciliary Function and Membrane Impermeability of the Pseudostratified Lung Airway Epithelium
Published on: February 21, 2025
Mycoplasma hyopneumoniae modulates ciliary function and epithelial integrity in air-liquid interface porcine
Ana F Castillo-Espinoza1, Rahul K Nelli1, Juan C Mora-Díaz1
1Department of Veterinary Diagnostic and Production Animal Medicine, College of Veterinary Medicine, Iowa State University, Ames, Iowa, USA.
Abstract:
Mycoplasma hyopneumoniae (Mhp), the causative agent of enzootic pneumonia, disrupts mucociliary clearance by adhering to porcine ciliated airway cells, contributing to chronic respiratory disease. Traditional submerged cell cultures lack airway-like polarity and structural complexity, limiting Mhp in vitro studies. This study utilized a porcine air-liquid interface porcine respiratory epithelial cell (ALI-PREC) model to investigate Mhp infection dynamics, cytopathic effects (CPEs), and host-specific responses. Primary tracheal epithelial cells isolated from three 6-week-old pigs were cultured under air-liquid interface conditions for 4 weeks to form differentiated pseudostratified, ciliated epithelium. ALI-PRECs were inoculated with Mhp strain 232 at 105.84, 106.84, and 107.84 CCU/mL for 2 or 5 h and monitored for 144 h. Quantitative microscopy assessed total particle count, area, average size, and percentage area covered by particles, normalized against mock controls. Mhp adhered within 2 h, inducing CPE (cell rounding, clustering, and detachment) and reducing ciliary activity in a dose- and time-dependent manner. Mhp DNA was detected in the epithelium by 24 h post-inoculation (hpi) and in subnatants at higher doses, demonstrating epithelial barrier disruption. Ciliary beating persisted in some replicates, suggesting interindividual variability in host responses. Friis medium had no detectable impact on ALI-PRECs, validating its suitability for infection studies. Gene expression analysis revealed downregulation of ciliary motility genes (ROPN1L, LRRC51, CEP162, and LRRC6) at 72 hpi and upregulation of intercellular junction genes (CLDN1, CDH1, and CTNND1) by 120 hpi, suggesting a wound healing response. The ALI-PREC model effectively mirrors key aspects of Mhp pathogenesis, providing a robust platform for studying host-pathogen interactions and identifying therapeutic targets.IMPORTANCEDespite its economic impact on pigs, the mechanisms by which Mycoplasma hyopneumoniae (Mhp) causes enzootic pneumonia remain poorly understood. Early infection events (bacterial exposure and adherence) are hard to study in vitro because traditional cell cultures lack airway complexity and cellular diversity. We developed an in vitro model replicating porcine airway structure and cell populations. Using this model, we showed that Mhp rapidly adheres to airway cells and disrupts ciliary function and epithelial integrity in a dose- and time-dependent manner. These effects coincide with altered expression of genes governing ciliary motility and cell-cell junctions. Importantly, our model revealed natural variability in cytopathic responses among pigs, indicating that host-specific factors influence disease progression. These insights may guide personalized strategies for preventing and treating swine respiratory infections.
Insights
Mycoplasma hyopneumoniae (Mhp) rapidly adheres to pig airway cells, disrupting ciliary function and epithelial integrity. This study introduces a novel porcine air-liquid interface model to investigate Mhp pathogenesis and host responses.
Area of Science:
- Veterinary Microbiology
- Cell Biology
- Infectious Diseases
Background:
- Mycoplasma hyopneumoniae (Mhp) causes enzootic pneumonia in pigs, leading to significant economic losses.
- Traditional in vitro cell cultures lack the complexity to accurately model Mhp infection dynamics.
- Understanding early Mhp infection events, such as bacterial adherence and host cell response, is crucial for developing effective treatments.
Purpose of the Study:
- To establish and validate a porcine air-liquid interface porcine respiratory epithelial cell (ALI-PREC) model for studying Mhp infection.
- To investigate the dynamics of Mhp adherence, cytopathic effects (CPEs), and host-specific responses in the ALI-PREC model.
- To analyze gene expression changes related to ciliary function and epithelial integrity following Mhp infection.
Main Methods:
- Primary porcine tracheal epithelial cells were cultured under air-liquid interface (ALI) conditions for 4 weeks to form differentiated, ciliated epithelium.
- ALI-PRECs were inoculated with Mhp at varying concentrations and monitored for up to 144 hours post-inoculation (hpi).
- Quantitative microscopy, Mhp DNA detection, and gene expression analysis (RT-qPCR) were employed to assess infection dynamics and host responses.
Main Results:
- Mhp adhered to ALI-PRECs within 2 hours, causing dose- and time-dependent CPE, including cell rounding, detachment, and reduced ciliary activity.
- Mhp DNA was detected in the epithelium by 24 hpi, and in subnatants at higher doses, indicating epithelial barrier disruption.
- Gene expression analysis revealed downregulation of ciliary motility genes and upregulation of intercellular junction genes, suggesting a wound healing response. Inter-individual variability in host response was observed.
Conclusions:
- The ALI-PREC model effectively replicates key aspects of Mhp pathogenesis, including bacterial adherence, CPE, and epithelial barrier disruption.
- The model demonstrates the dose- and time-dependent effects of Mhp infection and highlights the role of host-specific responses.
- This validated model provides a robust platform for studying Mhp-host interactions and identifying potential therapeutic targets for enzootic pneumonia.
More Related Videos
09:02Infection of Primary Nasal Epithelial Cells Grown at an Air-Liquid Interface to Characterize Human Coronavirus-Host Interactions
Published on: September 22, 2023
14:48Flow Cytometric Isolation of Primary Murine Type II Alveolar Epithelial Cells for Functional and Molecular Studies
Published on: December 26, 2012
Related Concept Videos
Atypical Pneumonia
Pneumonia I: Introduction
Chronic Obstructive Pulmonary Disease-II: Pathophysiology
Chronic Inflammation
Chronic Obstructive Pulmonary Disease III: Chronic Bronchitis Features
Chronic Obstructive Pulmonary Disease II: Emphysema