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  4. Cartilage tissue engineering on the surface of a novel gelatin-calcium- phosphate biphasic scaffold in a double-chamber bioreactor
 
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Cartilage tissue engineering on the surface of a novel gelatin-calcium- phosphate biphasic scaffold in a double-chamber bioreactor

Journal
Journal of Biomedical Materials Research - Part B Applied Biomaterials
Journal Volume
71
Journal Issue
2
Pages
313-321
Date Issued
2004
Author(s)
Chang, C.-H.
Lin, F.-H.
Lin, C.-C.
Chou, C.-H.
Liu, H.-C.
Lin, Feng-Huei  
DOI
10.1002/jbm.b.30090
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/464068
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-7744243997&doi=10.1002%2fjbm.b.30090&partnerID=40&md5=5fd445a08fe37dd9f0fb6188fdf2d44b
Abstract
Tissue engineering is a new approach to articular cartilage repair; however, the integration of the engineered cartilage into the host subchondral bone is a major problem in osteochondral injury. The aim of the present work, therefore, was to make a tissue-engineered osteochondral construct from a novel biphasic scaffold in a newly designed double-chamber bioreactor. This bioreactor was designed to coculture chondrocytes and osteoblasts simultaneously. The aim of this study was to prove that engineered cartilage could be formed with the use of this biphasic scaffold. The scaffold was constructed from gelatin and a calcium-phosphate block made from calcined bovine bone. The cartilage part of the scaffold had a uniform pore size of about 180 microm and approximate porosity of 75%, with the trabecular pattern preserved in the bony part of the scaffold. The biphasic scaffolds were seeded with porcine chondrocytes and cultured in a double-chamber bioreactor for 2 or 4 weeks. The chondrocytes were homogeneously distributed in the gelatin part of the scaffold, and secretion of the extracellular matrix was demonstrated histologically. The chondrocytes retained their phenotype after 4 weeks of culture, as proven immunohistochemically. After 4 weeks of culture, hyaline-like cartilage with lacuna formation could be clearly seen in the gelatin scaffold on the surface of the calcium phosphate. The results show that this biphasic scaffold can support cartilage formation on a calcium-phosphate surface in a double-chamber bioreactor, and it seems reasonable to suggest that there is potential for further application in osteochondral tissue engineering.
SDGs

[SDGs]SDG6

Type
journal article

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