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Ritzmann, F.

Publications and source records attributed to Ritzmann, F..

2 recordsLinked to original sources

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

BackgroundInfections of the respiratory tract such as pneumonia or COVID-19 cause high mortality and morbidity worldwide. Organ-on-a-chip (OC) technologies have been developed in the last years to establish human-based disease models, to study basic disease mechanisms and to provide a tool to speed up drug development. The aim of this study was to establish a lung-liver microfluidic system to study the interaction of both organ modules during infection. MethodsA two organ (lung / liver) microfluidic system was established using primary human bronchial (HBECs) or alveolar type epithelial cells (ATC) 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 effect of lung epithelial bacterial stimulation on the liver cell transcriptome was analyzed by mRNA sequencing. ResultsLung and liver cells established stable cultures in a circulatory microfluidic system. Activation of HBECs or ATCs with NTHi or PAO1 resulted in the secretion of multiple inflammatory mediators into the microfluidic medium including TNF-, monocyte chemotactic protein-1 (MCP-1) and macrophage inflammatory protein-3 (MIP-3). Addition of lung cells and application of bacterial onto the HBECs module resulted in the gross change of the transcriptome of the liver cell module. Gene ontology enrichment analysis showed the induction of various pathways involved in host defense, metabolisms, repair, and acute phase response. InterpretationIn conclusion, a two-organ lung/liver microfluidic system was established to study the interaction of the organ modules during infection. Mediators released from epithelial culture modules into the microfluidic circulation after exposure to bacterial pathogens significantly modify the gene expression patterns of liver cells. FundingThis research was funded by the German Federal Ministry of Education and Research (BMBF), 031L0153 VISION "Alternativmethoden zum Tierversuch" and the Dr. Rolf M. Schwiete Stiftung.

cell biology↗

Mutual regulation of transcriptomes between pneumocytes and fibroblasts mediates alveolar regeneration

Alveolar type 2 (AT2) and club cells are part of the stem cell niche of the lung and their differentiation is required for pulmonary homeostasis and tissue regeneration. A disturbed crosstalk between fibroblasts and epithelial cells contributes to the loss of lung structure in chronic lung diseases. Therefore, it is important to understand how fibroblasts and lung epithelial cells interact during regeneration. Here we analyzed the interaction of fibroblasts and the alveolar epithelium modelled in air-liquid interface cultures. Single-cell transcriptomics showed that co-cultivation with fibroblasts leads to increased expression of type 2 markers in pneumocytes, activation of regulons associated with maintenance of alveolar type 2 cells, and trans-differentiation of club cells towards pneumocytes. This was accompanied by an intensified transepithelial barrier. Vice versa, activation of NF{kappa}B pathways and the CEBPB regulon as well as the expression of IL-6 and other differentiation factors (e.g. FGFs) were increased in fibroblasts co-cultured with epithelial cells. Recombinant IL-6 enhanced epithelial barrier formation. Therefore, in our co-culture model, regulatory loops were identified by which lung epithelial cells mediate regeneration and differentiation of the alveolar epithelium in a cooperative manner with the mesenchymal compartment.

cell biology↗