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Modeling of lung-liver interaction during infection in a human fluidic organ-on-a-chip

作者:Susanne Reinhold, Christian Herr, Yiwen Yao, Mehdi Pourrostami, Felix Ritzmann, Thorsten Lehr, Dominik Selzer, Yvonne Kohl, Daniela Yildiz, Hortense Slevogt, Christoph Beißwenger, Robert Bals · 发表于:Scientific Reports · 年份:2025 · DOI:10.1038/s41598-025-22682-z · 被引用次数:8 · 研究领域:3D Printing in Biomedical Research、Liver physiology and pathology、Innovative Microfluidic and Catalytic Techniques Innovation

Respiratory infections, including pneumonia and COVID-19, are major causes of global mortality and morbidity. Recent advancements in organ-on-a-chip (OOC) technologies have paved the way for human-based disease models, offering new tools for studying disease mechanisms and accelerating drug development. The aim of this study was to establish a lung-liver fluidic system to study the interaction of both organ modules during infection. A two organ (lung-liver) fluidic system was established using primary human bronchial (HBECs) or alveolar type epithelial cells (AT) for the lung module and Huh-7 cells for the liver module. Inactivated non-typeable Haemophilus influenzae (NTHi) and Pseudomonas aeruginosa PAO1 (PAO1) were applied to the lung module. Secreted mediators were screened by dot-blot analysis and quantified. The impact of bacteria-exposed epithelial cells on the liver cell transcriptome was analyzed via mRNA sequencing. Lung and liver cells established stable cultures in a circulatory fluidic system. Activation of HBECs or ATCs with NTHi or PAO1 resulted in the secretion of multiple inflammatory mediators into the microfluidic medium including tumor necrosis factor-alpha (TNF-α), monocyte chemotactic protein-1 (MCP-1) and macrophage inflammatory protein-1-α (MIP-1α). Addition of lung cells and application of bacterial onto the HBEC module led to significant transcriptomic alterations in the liver cell module. Gene ontology enrichment analysis showed the induction of vari...