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Characterization of Pediatric Cystic Fibrosis Airway Epithelial Cell Cultures at the Air-liquid Interface Obtained by Non-invasive Nasal Cytology Brush Sampling

Overview
Journal Respir Res
Specialty Pulmonary Medicine
Date 2017 Dec 29
PMID 29282053
Citations 18
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Abstract

Background: In vitro systems of primary cystic fibrosis (CF) airway epithelial cells are an important tool to study molecular and functional features of the native respiratory epithelium. However, undifferentiated CF airway cell cultures grown under submerged conditions do not appropriately represent the physiological situation. A more advanced CF cell culture system based on airway epithelial cells grown at the air-liquid interface (ALI) recapitulates most of the in vivo-like properties but requires the use of invasive sampling methods. In this study, we describe a detailed characterization of fully differentiated primary CF airway epithelial cells obtained by non-invasive nasal brushing of pediatric patients.

Methods: Differentiated cell cultures were evaluated with immunolabelling of markers for ciliated, mucus-secreting and basal cells, and tight junction and CFTR proteins. Epithelial morphology and ultrastructure was examined by histology and transmission electron microscopy. Ciliary beat frequency was investigated by a video-microscopy approach and trans-epithelial electrical resistance was assessed with an epithelial Volt-Ohm meter system. Finally, epithelial permeability was analysed by using a cell layer integrity test and baseline cytokine levels where measured by an enzyme-linked immunosorbent assay.

Results: Pediatric CF nasal cultures grown at the ALI showed a differentiation into a pseudostratified epithelium with a mucociliary phenotype. Also, immunofluorescence analysis revealed the presence of ciliated, mucus-secreting and basal cells and tight junctions. CFTR protein expression was observed in CF (F508del/F508del) and healthy cultures and baseline interleukin (IL)-8 and IL-6 release were similar in control and CF ALI cultures. The ciliary beat frequency was 9.67 Hz and the differentiated pediatric CF epithelium was found to be functionally tight.

Conclusion: In summary, primary pediatric CF nasal epithelial cell cultures grown at the ALI showed full differentiation into ciliated, mucus-producing and basal cells, which adequately reflect the in vivo properties of the human respiratory epithelium.

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References
1.
McDougall C, Blaylock M, Graham Douglas J, Brooker R, Helms P, Walsh G . Nasal epithelial cells as surrogates for bronchial epithelial cells in airway inflammation studies. Am J Respir Cell Mol Biol. 2008; 39(5):560-8. PMC: 2643208. DOI: 10.1165/rcmb.2007-0325OC. View

2.
Adam D, Roux-Delrieu J, Luczka E, Bonnomet A, Lesage J, Merol J . Cystic fibrosis airway epithelium remodelling: involvement of inflammation. J Pathol. 2014; 235(3):408-19. DOI: 10.1002/path.4471. View

3.
John G, Yildirim A, Rubin B, Gruenert D, Henke M . TLR-4-mediated innate immunity is reduced in cystic fibrosis airway cells. Am J Respir Cell Mol Biol. 2009; 42(4):424-31. PMC: 5459530. DOI: 10.1165/rcmb.2008-0408OC. View

4.
Sajjan U, Keshavjee S, Forstner J . Responses of well-differentiated airway epithelial cell cultures from healthy donors and patients with cystic fibrosis to Burkholderia cenocepacia infection. Infect Immun. 2004; 72(7):4188-99. PMC: 427436. DOI: 10.1128/IAI.72.7.4188-4199.2004. View

5.
Boucher R . Airway surface dehydration in cystic fibrosis: pathogenesis and therapy. Annu Rev Med. 2007; 58:157-70. DOI: 10.1146/annurev.med.58.071905.105316. View