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The development of a tissue-engineered tracheobronchial epithelial model using a bilayered collagen-hyaluronate scaffold

  • Cian O'Leary
  • , Brenton Cavanagh
  • , Ronald E. Unger
  • , C. James Kirkpatrick
  • , Shirley O'Dea
  • , Fergal J. O'Brien
  • , Sally Ann Cryan
  • Royal College of Surgeons in Ireland
  • Trinity College Dublin
  • Johannes Gutenberg University Mainz
  • Maynooth University

Research output: Contribution to journalArticlepeer-review

61 Scopus citations

Abstract

Today, chronic respiratory disease is one of the leading causes of mortality globally. Epithelial dysfunction can play a central role in its pathophysiology. The development of physiologically-representative in vitro model systems using tissue-engineered constructs might improve our understanding of epithelial tissue and disease. This study sought to engineer a bilayered collagen-hyaluronate (CHyA-B) scaffold for the development of a physiologically-representative 3D in vitro tracheobronchial epithelial co-culture model. CHyA-scaffolds were fabricated by integrating a thin film top-layer into a porous sub-layer with lyophilisation. The film layer firmly connected to the sub-layer with delamination occurring at stresses of 12-15 kPa. Crosslinked scaffolds had a compressive modulus of 1.9 kPa and mean pore diameters of 70 μm and 80 μm, depending on the freezing temperature. Histological analysis showed that the Calu-bronchial epithelial cell line attached and grew on CHyA-with adoption of an epithelial monolayer on the film layer. Immunofluorescence and qRT-PCR studies demonstrated that the CHyA-scaffolds facilitated Calu-cell differentiation, with enhanced mucin expression, increased ciliation and the formation of intercellular tight junctions. Co-culture of Calu-cells with Wi38 lung fibroblasts was achieved on the scaffold to create a submucosal tissue analogue of the upper respiratory tract, validating CHyA-as a platform to support co-culture and cellular organisation reminiscent of in vivo tissue architecture. In summary, this study has demonstrated that CHyA-is a promising tool for the development of novel 3D tracheobronchial co-culture in vitro models with the potential to unravel new pathways in drug discovery and drug delivery.

Original languageEnglish
Pages (from-to)111-127
Number of pages17
JournalBiomaterials
Volume85
DOIs
StatePublished - 1 Apr 2016
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2016 Elsevier Ltd.

Funding

The authors acknowledge the funding received for this research under the Programme for Research in Third Level Institutions Cycle 5 & co-funded through the European Regional Development Fund , part of the European Union Structural Funds Programme 2007–2013, and the support of the European Molecular Biology Organisation (EMBO) short-term fellowship ( ASTF 567-2014 ). This publication has also been supported in part by a research grant from Science Foundation Ireland (SFI) under Grant Number SFI/12/RC/2278 , in addition to funding from the European Research Council (grant agreement no. 239685 ) under the EU Seventh Framework Programme (FP7/2007–2013). SAC is a SFI investigator (13/1A/1840). Collagen was kindly provided by Integra Life Sciences Corporation. COL would like to thank Alan J. Ryan, Royal College of Surgeons in Ireland, for helpful advice on the methods of pore size analysis.

FundersFunder number
FP7/2007
European Molecular Biology LaboratoryASTF 567-2014
European Commission
European Commission239685
Science Foundation IrelandSFI/12/RC/2278
Seventh Framework Programme
European Regional Development Fund

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 3 - Good Health and Well-being
      SDG 3 Good Health and Well-being

    Keywords

    • Bilayered
    • Co-culture
    • Collagen
    • Epithelium
    • Hyaluronate
    • Respiratory

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