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.

Microbiology Spectrum
|June 18, 2026
PubMed

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.

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