Breathing lung-on-chip: a versatile tool for assessing respiratory toxicity across multiple therapeutic modalities

Linnea Johansson1,2, Giulia Raggi3, James Cartwright4

  • 1Biopharma Safety, Clinical Pharmacology and Safety Sciences, BioPharmaceuticals R&D, AstraZeneca, Gothenburg, Sweden.

Archives of Toxicology
|January 14, 2026
PubMed

Insights

The AlveoliX Lung-on-Chip model effectively predicts respiratory toxicity for inhaled drugs, outperforming 2D cultures. This advanced model identifies inflammatory potential and aids in developing safer therapeutics for respiratory diseases.

Area of Science:

  • Toxicology
  • In vitro models
  • Respiratory medicine

Background:

  • Inhalation drug delivery targets respiratory diseases directly.
  • Candidate drug development faces limitations due to in vivo lung toxicity findings.
  • Predictive in vitro models are needed to assess lung toxicity and inflammatory responses.

Purpose of the Study:

  • To evaluate the AlveoliX Lung-on-Chip (AX Lung-on-Chip) model's predictive accuracy for inhaled substance respiratory toxicity.
  • To compare the AX Lung-on-Chip model's performance against traditional 2D cell cultures.
  • To assess the model's ability to differentiate compounds based on inflammatory potential.

Main Methods:

  • Utilized the AX Lung-on-Chip model and 2D cell cultures to test eight inhaled substances.
  • Optimized dosing and study design using 2D cultures.
  • Incorporated multiple endpoints and mechanical stretch in the AX Lung-on-Chip model for enhanced sensitivity.

Main Results:

  • 2D cultures could not differentiate compounds by inflammatory potential.
  • The AX Lung-on-Chip model showed more pronounced responses and differentiated compounds based on inflammatory potential.
  • Mechanical stretch in the AX Lung-on-Chip model potentially increased sensitivity to cytokine responses.
  • The model accurately predicted in vivo drug-induced inflammatory responses across a spectrum of lung pathologies.

Conclusions:

  • The AX Lung-on-Chip model demonstrates significant predictive capability for inhaled compound respiratory toxicity.
  • This model surpasses 2D cultures in assessing inflammatory potential and toxicity.
  • The AX Lung-on-Chip offers a promising tool for identifying inhaled compound toxicity and advancing safer drug development.

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