Comparative Phenotypic Analysis of Articular Chondrocytes Cultured within Type I or Type II Collagen Scaffolds

阿格里坎 II型胶原 Ⅰ型胶原 化学 胶原蛋白,I型,α1 软骨细胞 组织工程 细胞外基质 软骨 细胞生物学 糖胺聚糖 电池类型 间充质干细胞 生物医学工程 细胞 解剖 关节软骨 骨关节炎 病理 生物化学 生物 医学 替代医学
作者
Anne‐Marie Freyria,Marie‐Claire Ronzière,D. Cortial,Laurent Galois,Daniel Hartmann,D. Herbage,Frédéric Mallein‐Gérin
出处
期刊:Tissue Engineering Part A [Mary Ann Liebert, Inc.]
卷期号:15 (6): 1233-1245 被引量:68
标识
DOI:10.1089/ten.tea.2008.0114
摘要

Among the existing repair strategies for cartilage injury, tissue engineering approach using biomaterials and chondrocytes offers hope for treatments. In this context, collagen-based biomaterials are good candidates as scaffolds for chondrocytes in cell transplantation procedures. These scaffolds are provided under different forms (gel or crosslinked sponge) made with either type I collagen or type I or type II atelocollagen molecules. The present study was undertaken to investigate how bovine articular chondrocytes sense and respond to differences in the structure and organization of these collagen scaffolds, over a 12-day culture period. When chondrocytes were seeded in the collagen scaffolds maintained in free-floating conditions, cells contracted gels to 40-60% and sponges to 15% of their original diameter. Real-time polymerase chain reaction analysis indicated that the chondrocyte phenotype, assessed notably by the ratio of COL2A1/COL1A2 mRNA and alpha10/alpha11 integrin subunit mRNA, was comparatively better sustained in type I collagen sponges when seeded at high cell density, also in type I atelocollagen gels. Besides, proteoglycan accumulation in the different scaffolds, as assessed by measuring the sulfated glycosaminoglycan content, was found be highest in type I collagen sponges seeded at high cell density. In addition, gene expression of matrix metalloproteinase-13 increased dramatically (up to 90-fold) in chondrocytes cultured in the different gels, whereas it remained stable in the sponges. Our data taken together reveal that type I collagen sponges seeded at high cell density represent a suitable material for tissue engineering of cartilage.
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