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Bioengineered in VitroTissue Model of Fibroblast Activation for Modeling Pulmonary Fibrosis

Authors :
Sundarakrishnan, Aswin
Zukas, Heather
Coburn, Jeannine
Bertini, Brian T.
Liu, Zhiyi
Georgakoudi, Irene
Baugh, Lauren
Dasgupta, Queeny
Black, Lauren D.
Kaplan, David L.
Source :
ACS Biomaterials Science & Engineering; April 2019, Vol. 5 Issue: 5 p2417-2429, 13p
Publication Year :
2019

Abstract

Idiopathic pulmonary fibrosis (IPF) is a complex disease of unknown etiology with no current curative treatment. Modeling pulmonary fibrotic (PF) tissue has the potential to improve our understanding of IPF disease progression and treatment. Rodent animal models do not replicate human fibroblastic foci (Hum-FF) pathology, and current iterations of in vitromodel systems (e.g., collagen hydrogels, polyacrylamide hydrogels, and fibrosis-on-chip systems) are unable to replicate the three-dimensional (3D) complexity and biochemical composition of human PF tissue. Herein, we fabricated a 3D bioengineered pulmonary fibrotic (Eng-PF) tissue utilizing cell laden silk collagen type I dityrosine cross-linked hydrogels and Flexcell bioreactors. We show that silk collagen type I hydrogels have superior stability and mechanical tunability compared to other hydrogel systems. Using customized Flexcell bioreactors, we reproduced Hum-FF-like pathology with airway epithelial and microvascular endothelial cells. Eng-PF tissues can model myofibroblast differentiation and permit evaluation of antifibrotic drug treatments. Further, Eng-PF tissues could be used to model different facets of IPF disease, including epithelial injury with the addition of bleomycin and cellular recruitment by perfusion of cells through the hydrogel microchannel.

Details

Language :
English
ISSN :
23739878
Volume :
5
Issue :
5
Database :
Supplemental Index
Journal :
ACS Biomaterials Science & Engineering
Publication Type :
Periodical
Accession number :
ejs49762141
Full Text :
https://doi.org/10.1021/acsbiomaterials.8b01262