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Updated: Aug 6, 2026

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Immunocompetent Alveolus-on-Chip Model for Studying Alveolar Mucosal Immune Responses
Published on: May 31, 2024
Modelling cigarette smoke-induced lung vascular dysfunction using an alveolus-on-chip
Abilash Ravi1, Tarek Gensheimer2, Annemarie van Schadewijk1
1PulmoScience Lab, Department of Pulmonology, Leiden University Medical Center, Leiden, 2333 ZA, the Netherlands.
Materials Today. Bio
|July 20, 2026
Summary
This study introduces a novel alveolus-on-chip model with perfusable 3D vascular networks and alveolar epithelial cells. The platform effectively models lung injury from cigarette smoke and aids in studying vascular-epithelial interactions.
Area of Science:
- Biomedical Engineering
- Pulmonary Research
- Organ-on-Chip Technology
Background:
- Alveolar damage is key in lung diseases like COPD.
- Understanding alveolar microvascular and epithelial-endothelial interactions is crucial for disease modeling.
- Current models lack the complexity of in vivo alveolar microenvironments.
Purpose of the Study:
- To develop an advanced alveolus-on-chip platform for studying lung physiology and disease.
- To investigate vascular-epithelial crosstalk and responses to environmental insults.
- To create a human-relevant model for lung injury and drug testing.
Main Methods:
- Constructed an open-top, membrane-free alveolus-on-chip with 3D vascular networks using primary human lung endothelial cells and pericytes, co-cultured with alveolar epithelial type 2 (AEC2) cells.
- Utilized continuous flow for vascular network development and assessed stability.
- Exposed the model to whole cigarette smoke (WCS) to evaluate its impact on vascular-epithelial integrity.
Main Results:
- Developed stable, perfusable 3D vascular networks within 6 days.
- Pericytes enhanced capillary-like vessel formation and specific gene expression (EDNRB1).
- AEC2 exposure to WCS caused vascular network disintegration, highlighting a critical interaction.
Conclusions:
- The alveolus-on-chip platform provides a human-relevant system for studying vascular-epithelial crosstalk in the lung.
- This model is valuable for investigating smoke-induced lung injury and immune responses.
- The platform offers potential for future lung disease modeling and therapeutic development.
