Chondrocytes and meniscal fibrochondrocytes differentially process aggrecan during de novo extracellular matrix assembly
- PMID: 19260779
- PMCID: PMC2810410
- DOI: 10.1089/ten.tea.2008.0106
Chondrocytes and meniscal fibrochondrocytes differentially process aggrecan during de novo extracellular matrix assembly
Abstract
Aggrecan is an extracellular matrix molecule that contributes to the mechanical properties of articular cartilage and meniscal fibrocartilage, but the abundance and processing of aggrecan in these tissues are different. The objective of this study was to compare patterns of aggrecan processing by chondrocytes and meniscal fibrochondrocytes in tissue explants and cell-agarose constructs. The effects of transforming growth factor-beta 1 (TGF-beta1) stimulation on aggrecan deposition and processing were examined, and construct mechanical properties were measured. Fibrochondrocytes synthesized and retained less proteoglycans than did chondrocytes in tissue explants and agarose constructs. In chondrocyte constructs, TGF-beta1 induced the accumulation of a 120-kDa aggrecan species previously detected in mature bovine cartilage. Fibrochondrocyte-seeded constructs contained high-molecular-weight aggrecan but lacked aggrecanase-generated fragments found in native, immature meniscus. In addition, reflecting the lesser matrix accumulation, fibrochondrocyte constructs had significantly lower compression moduli than did chondrocyte constructs. These cell type-specific differences in aggrecan synthesis, retention, and processing may have implications for the development of functional engineered tissue grafts.
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References
-
- Hardingham T.E. Fosang A.J. The structure of aggrecan and its turnover in cartilage. J Rheumatol Suppl. 1995;43:86. - PubMed
-
- Valiyaveettil M. Mort J.S. McDevitt C.A. The concentration, gene expression, and spatial distribution of aggrecan in canine articular cartilage, meniscus, and anterior and posterior cruciate ligaments: a new molecular distinction between hyaline cartilage and fibrocartilage in the knee joint. Connect Tissue Res. 2005;46:83. - PubMed
-
- Upton M.L. Chen J. Setton L.A. Region-specific constitutive gene expression in the adult porcine meniscus. J Orthop Res. 2006;24:1562. - PubMed
-
- Melrose J. Smith S. Cake M. Read R. Whitelock J. Comparative spatial and temporal localisation of perlecan, aggrecan and type I, II and IV collagen in the ovine meniscus: an ageing study. Histochem Cell Biol. 2005;124:225. - PubMed
-
- McAlinden A. Dudhia J. Bolton M.C. Lorenzo P. Heinegard D. Bayliss M.T. Age-related changes in the synthesis and mRNA expression of decorin and aggrecan in human meniscus and articular cartilage. Osteoarthritis Cartilage. 2001;9:33. - PubMed
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