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PMID: 11082357 Published · ppublish English Journal Article

Early in vivo experience with tissue-engineered trileaflet heart valves.

Circulation ·Vol. 102 ·No. 19 Suppl 3 ·2000-11-07 ·Pages III22-9

Sodian R, Hoerstrup SP, Sperling JS, Daebritz S, Martin DP, Moran AM, Kim BS, Schoen FJ, Vacanti JP, Mayer JE

Abstract

Tissue engineering is a new approach in which techniques are being developed to transplant autologous cells onto biodegradable scaffolds to ultimately form new functional autologous tissue. Workers at our laboratory have focused on tissue engineering of heart valves. The present study was designed to evaluate the implantation of a whole trileaflet tissue-engineered heart valve in the pulmonary position in a lamb model. We constructed a biodegradable and biocompatible trileaflet heart valve scaffold that was fabricated from a porous polyhydroxyalkanoate (pore size 180 to 240 microm; Tepha Inc). Vascular cells were harvested from ovine carotid arteries, expanded in vitro, and seeded onto our heart valve scaffold. With the use of cardiopulmonary bypass, the native pulmonary leaflets were resected, and 2-cm segments of pulmonary artery were replaced by autologous cell-seeded heart valve constructs (n=4). One animal received an acellular valved conduit. No animal received any anticoagulation therapy. Animals were killed at 1, 5, 13, and 17 weeks. Explanted valves were examined histologically with scanning electron microscopy, biochemically, and biomechanically. All animals survived the procedure. The valves showed minimal regurgitation, and valve gradients were <20 mm Hg on echocardiography. The maximum gradient was 10 mm Hg with direct pressures. Macroscopically, the tissue-engineered constructs were covered with tissue, and there was no thrombus formation on any of the specimens. Scanning electron microscopy showed smooth flow surfaces during the follow-up period. Histological examination demonstrated laminated fibrous tissue with predominant glycosaminoglycans as extracellular matrix. 4-Hydroxyproline assays demonstrated an increase in collagen content as a percentage of native pulmonary artery (1 week 45.8%, 17 weeks 116%). DNA assays showed a comparable number of cells in all explanted samples. There was no tissue formation in the acellular control. Tissue-engineered heart valve scaffolds fabricated from polyhydroxyalkanoates can be used for implantation in the pulmonary position with an appropriate function for 120 days in lambs.

MeSH Terms
Absorbable Implants Animals Cell Division Cells, Cultured Collagen/biosynthesis Endothelium, Vascular/cytology,metabolism,transplantation Graft Survival Heart Valve Prosthesis Heart Valve Prosthesis Implantation Polymers Porosity Pulmonary Valve/cytology,surgery,transplantation Sheep Stress, Mechanical Transplantation, Autologous
Chemicals
Polymers Collagen
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Sodian R
Department of Cardiac Research, Children's Hospital Boston, Harvard Medical School, Boston, MA 02115, USA.
Hoerstrup S P
Sperling J S
Daebritz S
Martin D P
Moran A M
Kim B S
Schoen F J
Vacanti J P
Mayer J E
Article Info
Journal
Circulation
Abbr.
Circulation
ISSN
1524-4539
Published
2000-11-07
Pages
III22-9
Language
English
Region
United States
NLM ID
0147763
Subset
IM
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