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Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts

Organotypic 3D cultures of epithelial cells are grown at the air–liquid interface (ALI) and resemble the in vivo counterparts. Although the complexity of in vivo cellular responses could be better manifested in coculture models in which additional cell types such as fibroblasts were incorporated, th...

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Autores principales: Iskandar, Anita R., Xiang, Yang, Frentzel, Stefan, Talikka, Marja, Leroy, Patrice, Kuehn, Diana, Guedj, Emmanuel, Martin, Florian, Mathis, Carole, Ivanov, Nikolai V., Peitsch, Manuel C., Hoeng, Julia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4549394/
https://www.ncbi.nlm.nih.gov/pubmed/26085348
http://dx.doi.org/10.1093/toxsci/kfv122
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author Iskandar, Anita R.
Xiang, Yang
Frentzel, Stefan
Talikka, Marja
Leroy, Patrice
Kuehn, Diana
Guedj, Emmanuel
Martin, Florian
Mathis, Carole
Ivanov, Nikolai V.
Peitsch, Manuel C.
Hoeng, Julia
author_facet Iskandar, Anita R.
Xiang, Yang
Frentzel, Stefan
Talikka, Marja
Leroy, Patrice
Kuehn, Diana
Guedj, Emmanuel
Martin, Florian
Mathis, Carole
Ivanov, Nikolai V.
Peitsch, Manuel C.
Hoeng, Julia
author_sort Iskandar, Anita R.
collection PubMed
description Organotypic 3D cultures of epithelial cells are grown at the air–liquid interface (ALI) and resemble the in vivo counterparts. Although the complexity of in vivo cellular responses could be better manifested in coculture models in which additional cell types such as fibroblasts were incorporated, the presence of another cell type could mask the response of the other. This study reports the impact of whole cigarette smoke (CS) exposure on organotypic mono- and coculture models to evaluate the relevancy of organotypic models for toxicological assessment of aerosols. Two organotypic bronchial models were directly exposed to low and high concentrations of CS of the reference research cigarette 3R4F: monoculture of bronchial epithelial cells without fibroblasts (BR) and coculture with fibroblasts (BRF) models. Adenylate kinase (AK)-based cytotoxicity, cytochrome P450 (CYP) 1A1/1B1 activity, tissue histology, and concentrations of secreted mediators into the basolateral media, as well as transcriptomes were evaluated following the CS exposure. The results demonstrated similar impact of CS on the AK-based cytotoxicity, CYP1A1/1B1 activity, and tissue histology in both models. However, a greater number of secreted mediators was identified in the basolateral media of the monoculture than in the coculture models. Furthermore, annotation analysis and network-based systems biology analysis of the transcriptomic profiles indicated a more prominent cellular stress and tissue damage following CS in the monoculture epithelium model without fibroblasts. Finally, our results indicated that an in vivo smoking-induced xenobiotic metabolism response of bronchial epithelial cells was better reflected from the in vitro CS-exposed coculture model.
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spelling pubmed-45493942015-08-27 Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts Iskandar, Anita R. Xiang, Yang Frentzel, Stefan Talikka, Marja Leroy, Patrice Kuehn, Diana Guedj, Emmanuel Martin, Florian Mathis, Carole Ivanov, Nikolai V. Peitsch, Manuel C. Hoeng, Julia Toxicol Sci Organotypic Bronchial Epithelia Cultures and Tobacco Smoke Organotypic 3D cultures of epithelial cells are grown at the air–liquid interface (ALI) and resemble the in vivo counterparts. Although the complexity of in vivo cellular responses could be better manifested in coculture models in which additional cell types such as fibroblasts were incorporated, the presence of another cell type could mask the response of the other. This study reports the impact of whole cigarette smoke (CS) exposure on organotypic mono- and coculture models to evaluate the relevancy of organotypic models for toxicological assessment of aerosols. Two organotypic bronchial models were directly exposed to low and high concentrations of CS of the reference research cigarette 3R4F: monoculture of bronchial epithelial cells without fibroblasts (BR) and coculture with fibroblasts (BRF) models. Adenylate kinase (AK)-based cytotoxicity, cytochrome P450 (CYP) 1A1/1B1 activity, tissue histology, and concentrations of secreted mediators into the basolateral media, as well as transcriptomes were evaluated following the CS exposure. The results demonstrated similar impact of CS on the AK-based cytotoxicity, CYP1A1/1B1 activity, and tissue histology in both models. However, a greater number of secreted mediators was identified in the basolateral media of the monoculture than in the coculture models. Furthermore, annotation analysis and network-based systems biology analysis of the transcriptomic profiles indicated a more prominent cellular stress and tissue damage following CS in the monoculture epithelium model without fibroblasts. Finally, our results indicated that an in vivo smoking-induced xenobiotic metabolism response of bronchial epithelial cells was better reflected from the in vitro CS-exposed coculture model. Oxford University Press 2015-09 2015-06-16 /pmc/articles/PMC4549394/ /pubmed/26085348 http://dx.doi.org/10.1093/toxsci/kfv122 Text en © The Author 2015. Published by Oxford University Press on behalf of the Society of Toxicology. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs licence (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial reproduction and distribution of the work, in any medium, provided the original work is not altered or transformed in any way, and that the work properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Organotypic Bronchial Epithelia Cultures and Tobacco Smoke
Iskandar, Anita R.
Xiang, Yang
Frentzel, Stefan
Talikka, Marja
Leroy, Patrice
Kuehn, Diana
Guedj, Emmanuel
Martin, Florian
Mathis, Carole
Ivanov, Nikolai V.
Peitsch, Manuel C.
Hoeng, Julia
Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title_full Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title_fullStr Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title_full_unstemmed Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title_short Impact Assessment of Cigarette Smoke Exposure on Organotypic Bronchial Epithelial Tissue Cultures: A Comparison of Mono-Culture and Coculture Model Containing Fibroblasts
title_sort impact assessment of cigarette smoke exposure on organotypic bronchial epithelial tissue cultures: a comparison of mono-culture and coculture model containing fibroblasts
topic Organotypic Bronchial Epithelia Cultures and Tobacco Smoke
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4549394/
https://www.ncbi.nlm.nih.gov/pubmed/26085348
http://dx.doi.org/10.1093/toxsci/kfv122
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