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Phosgene effects on F-actin organization and concentration in cells cultured from sheep and rat lung

R J Werrlein1, J S Madren-Whalley, S D Kirby

  • 1Physiology Branch, United States Army Medical Research Institute of Chemical Defense, Aberdeen Proving Ground, Maryland.

Insights

Phosgene exposure damages lung barrier function by disrupting F-actin in endothelial and epithelial cells. This cytoskeletal damage contributes to pulmonary edema and immune suppression, impacting lung health.

Area of Science:

  • Toxicology
  • Cell Biology
  • Pulmonary Medicine

Background:

  • Phosgene gas exposure causes lung injury, leading to pulmonary edema and immunosuppression.
  • The precise cellular mechanisms underlying phosgene-induced lung damage are not fully understood.
  • Understanding cellular targets is crucial for mitigating phosgene's harmful effects.

Purpose of the Study:

  • To investigate the effects of phosgene on F-actin in pulmonary artery endothelial cells and airway epithelial cells.
  • To determine the cell-type specificity of phosgene's cytoskeletal effects.
  • To elucidate how phosgene impacts lung barrier function and immune response.

Main Methods:

  • Confocal laser microscopy and FITC-conjugated phalloidin were used to study F-actin.
  • Cultured endothelial cells from sheep pulmonary arteries and epithelial cells from rat tracheal explants were exposed to phosgene.
  • Image analysis quantified F-actin content and observed cellular ultrastructure.

Main Results:

  • Phosgene exposure caused immediate, dose-dependent decreases in F-actin content in both cell types.
  • Endothelial cells showed diminished F-actin stress fibers, basal lamina separation, and increased permeability.
  • Airway epithelial cells exhibited F-actin reduction and phenotypic transformations, including dendritic processes.

Conclusions:

  • F-actin is a sensitive target for phosgene in lung endothelial and epithelial cells.
  • Phosgene-induced cytoskeletal disruption contributes to impaired lung barrier function and vascular leakage.
  • Cell-type specific responses suggest complex mechanisms of phosgene toxicity in the lung.

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