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1.
Artif Organs ; 39(12): 1024-32, 2015 Dec.
Article in English | MEDLINE | ID: mdl-25894696

ABSTRACT

Decellularization of native organs may provide an acellular tissue platform for organ regeneration. However, decellularization involves a trade-off between removal of immunogenic cellular elements and preservation of biomechanical integrity. We sought to develop a bioartificial scaffold for respiratory tissue engineering by decellularization of porcine lungs and trachea while preserving organ architecture and vasculature. Lung-trachea preparations from 25 German Landrace pigs were perfused in a modified Langendorff circuit and decellularized by an SDC (sodium deoxycholate)-based perfusion protocol. Decellularization was evaluated by histology and fluorescence microscopy, and residual DNA quantified spectrophotometrically and compared with controls. Airway compliance was evaluated by endotracheal intubation and mechanical ventilation to simulate physiological breathing-induced stretch. Structural integrity was evaluated by bronchoscopy and biomechanical stress/strain analysis by measuring passive tensile strength, all compared with controls. Decellularized lungs and trachea lacked intracellular components but retained specific collagen fibers and elastin. Quantitative DNA analysis demonstrated a significant reduction of DNA compared with controls (32.8 ± 12.4 µg DNA/mg tissue vs. 179.7 ± 35.8 µg DNA/mg tissue, P < 0.05). Lungs and trachea decellularized by our perfusion protocol demonstrated increased airway compliance but preserved biomechanical integrity as compared with native tissue. Whole porcine lungs-tracheae can be successfully decellularized to create an acellular scaffold that preserves extracellular matrix and retains structral integrity and three-dimensional architecture to provide a bioartifical platform for respiratory tissue engineering.


Subject(s)
Deoxycholic Acid/pharmacology , Lung/drug effects , Perfusion/methods , Regenerative Medicine/methods , Tissue Scaffolds , Trachea/drug effects , Animals , Biomechanical Phenomena , Blotting, Western , Bronchoscopy , DNA/metabolism , Female , Lung/blood supply , Lung/cytology , Lung/metabolism , Lung Compliance , Microscopy, Fluorescence , Respiration , Respiration, Artificial , Spectrophotometry , Stress, Mechanical , Sus scrofa , Tensile Strength , Time Factors , Tissue Engineering , Trachea/blood supply , Trachea/cytology , Trachea/metabolism
2.
PLoS One ; 9(11): e111591, 2014.
Article in English | MEDLINE | ID: mdl-25365554

ABSTRACT

BACKGROUND: A bioartificial heart is a theoretical alternative to transplantation or mechanical left ventricular support. Native hearts decellularized with preserved architecture and vasculature may provide an acellular tissue platform for organ regeneration. We sought to develop a tissue-engineered whole-heart neoscaffold in human-sized porcine hearts. METHODS: We decellularized porcine hearts (n = 10) by coronary perfusion with ionic detergents in a modified Langendorff circuit. We confirmed decellularization by histology, transmission electron microscopy and fluorescence microscopy, quantified residual DNA by spectrophotometry, and evaluated biomechanical stability with ex-vivo left-ventricular pressure/volume studies, all compared to controls. We then mounted the decellularized porcine hearts in a bioreactor and reseeded them with murine neonatal cardiac cells and human umbilical cord derived endothelial cells (HUVEC) under simulated physiological conditions. RESULTS: Decellularized hearts lacked intracellular components but retained specific collagen fibers, proteoglycan, elastin and mechanical integrity; quantitative DNA analysis demonstrated a significant reduction of DNA compared to controls (82.6±3.2 ng DNA/mg tissue vs. 473.2±13.4 ng DNA/mg tissue, p<0.05). Recellularized porcine whole-heart neoscaffolds demonstrated re-endothelialization of coronary vasculature and measurable intrinsic myocardial electrical activity at 10 days, with perfused organ culture maintained for up to 3 weeks. CONCLUSIONS: Human-sized decellularized porcine hearts provide a promising tissue-engineering platform that may lead to future clinical strategies in the treatment of heart failure.


Subject(s)
Guided Tissue Regeneration/methods , Heart, Artificial , Tissue Engineering , Tissue Scaffolds , Animals , Female , Human Umbilical Vein Endothelial Cells/cytology , Humans , Mice , Models, Animal , Myocytes, Cardiac/cytology , Swine
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