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1.
J Thorac Cardiovasc Surg ; 120(6): 1158-67; discussion 1168, 2000 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-11088041

RESUMO

OBJECTIVE: In recent years bioabsorbable synthetic or biologic materials have been used to augment the pulmonary artery or the right ventricular outflow tract. However, each of these polymers has one or more shortcomings. None of these patch materials has been seeded with cells. Thus, we have tested a fast-absorbing biopolymer, poly-4-hydroxybutyric acid, with autologous cell seeding for patch augmentation of the pulmonary artery in a juvenile sheep model. METHODS: Vascular cells were isolated from ovine peripheral veins (n = 6). Bioabsorbable porous poly-4-hydroxybutyric acid patches (porosity > 95%) were seeded on 3 consecutive days with a mixed vascular cell suspension (21.3 +/- 1.3 x 10(6) cells). Forty-five (+/- 2) days after the vessel harvest, 1 unseeded and 6 autologously seeded control patches were implanted into the proximal pulmonary artery. The animals received no postoperative anticoagulation. Follow-up was performed with echocardiography after 1 week and before explantation after 1, 7, and 24 weeks (2 animals each) for the seeded control patches and after 20 weeks for the nonseeded control patch. RESULTS: All animals survived the procedure. Postoperative echocardiography of the seeded patches demonstrated a smooth surface without dilatation or stenosis. Macroscopic appearance showed a smooth internal surface with increasing tissue formation. Histology at 169 days demonstrated a near-complete resorption of the polymer and formation of organized and functional tissue. Biochemical assays revealed increasing cellular and extracellular matrix contents. The control patch showed a slight bulging, indicating a beginning dilatation. CONCLUSION: This experiment showed that poly-4-hydroxybutyric acid is a feasible patch material in the pulmonary circulation.


Assuntos
Implantes Absorvíveis , Prótese Vascular , Técnicas de Cultura/métodos , Endotélio Vascular/citologia , Endotélio Vascular/transplante , Membranas Artificiais , Poliésteres , Artéria Pulmonar/cirurgia , Transplante Autólogo/métodos , Animais , Ecocardiografia , Elastina/análise , Glicosaminoglicanos/análise , Poliésteres/análise , Porosidade , Proteoglicanas/análise , Artéria Pulmonar/diagnóstico por imagem , Artéria Pulmonar/fisiologia , Circulação Pulmonar , Ovinos , Fatores de Tempo , Veias/citologia
2.
J Thorac Cardiovasc Surg ; 119(4 Pt 1): 732-40, 2000 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-10733761

RESUMO

OBJECTIVE: Bioprosthetic and mechanical valves and valved conduits are unable to grow, repair, or remodel. In an attempt to overcome these shortcomings, we have evaluated the feasibility of creating 3-leaflet, valved, pulmonary conduits from autologous ovine vascular cells and biodegradable polymers with tissue-engineering techniques. METHODS: Endothelial cells and vascular medial cells were harvested from ovine carotid arteries. Composite scaffolds of polyglycolic acid and polyhydroxyoctanoates were formed into a conduit, and 3 leaflets (polyhydroxyoctanoates) were sewn into the conduit. These constructs were seeded with autologous medial cells on 4 consecutive days and coated once with autologous endothelial cells. Thirty-one days (+/-3 days) after cell harvesting, 8 seeded and 1 unseeded control constructs were implanted to replace the pulmonary valve and main pulmonary artery on cardiopulmonary bypass. No postoperative anticoagulation was given. Valve function was assessed by means of echocardiography. The constructs were explanted after 1, 2, 4, 6, 8, 12, 16, and 24 weeks and evaluated macroscopically, histologically, and biochemically. RESULTS: Postoperative echocardiography of the seeded constructs demonstrated no thrombus formation with mild, nonprogressive, valvular regurgitation up to 24 weeks after implantation. Histologic examination showed organized and viable tissue without thrombus. Biochemical assays revealed increasing cellular and extracellular matrix contents. The unseeded construct developed thrombus formation on all 3 leaflets after 4 weeks. CONCLUSION: This experimental study showed that valved conduits constructed from autologous cells and biodegradable matrix can function in the pulmonary circulation. The progressive cellular and extracellular matrix formation indicates that the remodeling of the tissue-engineered structure continues for at least 6 months.


Assuntos
Prótese Vascular , Próteses Valvulares Cardíacas , Valva Pulmonar , Animais , Materiais Biocompatíveis , Engenharia Biomédica , Implante de Prótese Vascular , Células Cultivadas , Ecocardiografia Doppler , Endotélio Vascular/citologia , Implante de Prótese de Valva Cardíaca , Polímeros , Desenho de Prótese , Valva Pulmonar/química , Valva Pulmonar/patologia , Valva Pulmonar/cirurgia , Ovinos , Valva Tricúspide
4.
J Cell Biochem ; 81(2): 220-8, 2001 Mar 26.
Artigo em Inglês | MEDLINE | ID: mdl-11241662

RESUMO

Appropriate matrix formation, turnover and remodeling in tissue-engineered small diameter vascular conduits are crucial requirements for their long-term patency and function. This complex process requires the deposition and accumulation of extracellular matrix molecules as well as the remodeling of this extracellular matrix (ECM) by matrix metalloproteinases (MMPs) and their endogenous inhibitors (TIMPs). In this study, we have investigated the dynamics of ECM production and the activity of MMPs and TIMPs in long-term tissue-engineered vascular conduits using quantitative ECM analysis, substrate gel electrophoresis, radiometric enzyme assays and Western blot analyses. Over a time period of 169 days in vivo, levels of elastin and proteoglycans/glycosaminoglycans in tissue-engineered constructs came to approximate those of their native tissue counter parts. The kinetics of collagen deposition and remodeling, however, apparently require a much longer time period. Through the use of substrate gel electrophoresis, proteolytic bands whose molecular weight was consistent with their identification as the active form of MMP-2 (approximately 64--66 kDa) were detected in all native and tissue-engineered samples. Additional proteolytic bands migrating at approximately 72 kDa representing the latent form of MMP-2 were detected in tissue-engineered samples at time points from 5 throughout 55 days. Radiometric assays of MMP-1 activity demonstrated no significant differences between the native and tissue-engineered samples. This study determines the dynamics of ECM production and turnover in a long-term tissue-engineered vascular tissue and highlights the importance of ECM remodeling in the development of successful tissue-engineered vascular structures.


Assuntos
Sistema Cardiovascular/metabolismo , Matriz Extracelular/metabolismo , Animais , Western Blotting , Colágeno/biossíntese , Elastina/biossíntese , Elastina/química , Eletroforese em Gel de Poliacrilamida , Gelatina/química , Hidroxiprolina/química , Cinética , Metaloproteinase 1 da Matriz/biossíntese , Metaloproteinase 2 da Matriz/biossíntese , Metaloproteinases da Matriz/metabolismo , Polímeros/química , Engenharia de Proteínas , Proteoglicanas/biossíntese , Ovinos , Fatores de Tempo , Inibidores Teciduais de Metaloproteinases/metabolismo
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