ArticleBioengineering & translational medicine2025
A stretchable human lung-on-chip model of alveolar inflammation for evaluating anti-inflammatory drug response.
Article in Bioengineering & translational medicine, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- Ultrathin Hydrogel Membranes Inspired by Soap Films Enable Physiologically Relevant Breathing Lung Models.Advanced materials (Deerfield Beach, Fla.) · 2026Article
- FN-silk membrane enables alveologenesis processes and self-organization of the H441 epithelial cell line into native-like alveolar morphology.Scientific reports · 2026Article
- A Human Vocal Fold Organ-On-Chip for Studying Platform-Dependent Mucosal Responses to Particulate Matter.bioRxiv : the preprint server for biology · 2026Article
- Respiratory Organ-on-a-Chip for Disease Modeling: From Architecture to Functional Integration.Advanced healthcare materials · 2026Review
- Engineering biomimetic tissue barrier models on chips: From design and fabrication to applications in disease modeling and drug screening.Biomaterials · 2026Review
- In Vitro and In Vivo Efficacy of Epithelial Barrier-Promoting Barriolides as Potential Therapy for Ulcerative Colitis.Biomedicines · 2026Article
- The role of 3D printing in skeletal muscle-on-a-chip models: Current applications and future potential.Materials today. Bio · 2025Article
- Interorgan Communication Between Lung and Colorectal Epithelial Cells Studied Using a Novel Multi-Organ-On-Chip System.Comprehensive physiology · 2025Article
- Organ-on-chip platforms for nanoparticle toxicity and efficacy assessment: Advancing beyond traditional in vitro and in vivo models.Materials today. Bio · 2025Review
- Advanced oral drug delivery systems for gastrointestinal targeted delivery: the design principles and foundations.Journal of nanobiotechnology · 2025Review
- A stretchable human lung-on-chip model of alveolar inflammation for evaluating anti-inflammatory drug response.Bioengineering & translational medicine · 2025Article
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Authors and funding
18 authors.
Funding
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Abstract
This study describes a complex human in vitro model for evaluating anti-inflammatory drug response in the alveoli that may contribute to the reduction of animal testing in the pre-clinical stage of drug development. The model is based on the human alveolar epithelial cell line Arlo co-cultured with macrophages differentiated from the THP-1 cell line, creating a physiological biological microenvironment. To mimic the three-dimensional architecture and dynamic expansion and relaxation of the air-blood-barrier, they are grown on a stretchable microphysiological lung-on-chip. For validating the in vitro model, three different protocols have been developed to demonstrate the clinically established anti-inflammatory effect of glucocorticoids to reduce certain inflammatory markers after different pro-inflammatory stimuli: (1) an inflammation caused by bacterial LPS (lipopolysaccharides) to simulate an LPS-induced acute lung injury measured best with cytokine IL-6 release; (2) an inflammation caused by LPS at ALI (air-liquid interface) to investigate aerosolized anti-inflammatory treatment, measured with chemokine IL-8 release; and (3) an inflammation with a combination of human inflammatory cytokines TNFα and IFNγ to simulate a critical cytokine storm leading to epithelial barrier disruption, where the eventual weakening or protection of the epithelial barrier can be measured. In all cases, the presence of macrophages appeared to be crucial to mediating inflammatory changes in the alveolar epithelium. LPS induction led to inflammatory changes independently of stretch conditions. Dynamic stretch, emulating breathing-like mechanics, was essential for in vitro modeling of the clinically relevant outcome of epithelial barrier disruption upon TNFα/IFNγ-induced inflammation.
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