176
Views
13
CrossRef citations to date
0
Altmetric
Original Article: Oncology

In vitro analysis of matrix proteins and growth factors in dedifferentiating human chondrocytes for tissue-engineered cartilage

, , , , , , & show all
Pages 647-653 | Received 24 Jun 2004, Published online: 08 Jul 2009

References

  • Naumann A, Rotter N, Bujia J, Aigner J. Tissue engineering of autologous cartilage transplants for rhinology. Am J Rhinol 1998; 12: 59–63
  • Maroudas A, Bayliss MT, Venn MF. Further studies on the composition of human femoral head cartilage. Ann Rheum Dis 1980; 39: 514–23
  • Muir H. The chondrocyte, architect of cartilage. Biomechanics, structure, function and molecular biology of cartilage matrix macromolecules. Bioessays 1995; 17: 1039–48
  • Oldberg A, Antonsson P, Hedbom E, Heinegard D. Structure and function of extracellular matrix proteoglycans. Biochem Soc Trans 1990; 18: 789–92
  • Buckwalter JA, Mankin HJ. Articular cartilage: tissue design and chondrocyte-matrix interactions. Instr Course Lect 1998; 47: 477–86
  • Goessler UR, Hörmann K, Riedel F. Tissue engineering with chondrocytes and function of the extracellular matrix. Int J Mol Med 2004; 13: 505–13
  • Eyre DR, Wu JJ. Collagen structure and cartilage matrix integrity. J Rheumatol Suppl 1995; 43: 82–5
  • McQuillan DJ, Handley CJ, Campbell MA, Bollis S, Milway VE, Herington AC. Stimulation of proteoglycan biosynthesis by serum and insulin-like growth factor-I in cultured bovine articular cartilage. Biochem J 1986; 240: 423–30
  • Schalkwijk J, Joosten LA, van den Berg WB, van Wyk JJ, van der Putte LB. Insulin-like growth factor stimulation of chondrocyte proteoglycan synthesis by human synovial fluid. Arthritis Rheum 1989; 32: 66–71
  • Chevalier X, Tyler JA. Production of binding proteins and role of the insulin-like growth factor I binding protein 3 in human articular cartilage explants. Br J Rheumatol 1996; 35: 515–22
  • Salter DM, Hughes DE, Simpson R, Gardner DL. Integrin expression by human articular chondrocytes. Br J Rheumatol 1992; 31: 231–4
  • Martin JA, Buckwalter JA. The role of chondrocyte-matrix interactions in maintaining and repairing articular cartilage. Biorheology 2000; 37: 129–40
  • Bhakta NR, Garcia AM, Frank EH, Grodzinski AJ, Morales TI. The insulin-like growth factors (IGFs) I and II bind to articular cartilage via the IGF-binding proteins. J Biol Chem 2000; 275: 5860–6
  • Powers CJ, McLeskey SW, Wellstein A. Fibroblast growth factors, their receptors and signaling. Endocr Relat Cancer 2000; 7: 165–97
  • Rapraeger AC, Guimond S, Krufka A, Olwin BB. Regulation by heparan sulfate in fibroblast growth factor signaling. Methods Enzymol 1994; 245: 219–40
  • Tajima Y, Kawasaki M, Kurihara K, Ueha T, Yokose S. Immunohistochemical profile of basic fibroblast growth factor and heparan sulphate in adult rat mandibular condylar cartilage. Arch Oral Biol 1998; 43: 873–7
  • Homminga GN, Buma P, Koot HW, van der Kran PM, van de Berg WB. Chondrocyte behavior in fibrin glue in vitro. Acta Orthop Scand 1993; 64: 441–5
  • Huh YH, Kim SH, Kim SJ, Chun JS. Differentiation status-dependent regulation of cyclooxygenase-2 expression and prostaglandin E2 production by epidermal growth factor via mitogen-activated protein kinase in articular chondrocytes. J Biol Chem 2003; 278: 9691–7
  • Pufe T, Harde V, Petersen W, Goldring MB, Tillmann B, Mentlein R. Vascular endothelial growth factor (VEGF) induces matrix metalloproteinase expression in immortalized chondrocytes. J Pathol 2004; 202: 367–74
  • Benjamin M, Ralphs JR. Biology of fibrocartilage cells. Int Rev Cytol 2004; 233: 1–45
  • Neame PJ, Sommarin Y, Boynton RE, Heinegard D. The structure of a 38-kDa leucine-rich protein (chondroadherin) isolated from bovine cartilage. J Biol Chem 1994; 269: 21547–54
  • Schnabel M, Marlovits S, Eckhoff G, Fichtel I, Gotzen L, Vecsei V, et al. Dedifferentiation-associated changes in morphology and gene expression in primary human articular chondrocytes in cell culture. Osteoarthritis Cartilage 2002; 10: 62–70
  • Schmid TM, Linsenmayer TF. Immunohistochemical localization of short chain cartilage collagen (type X) in avian tissues. J Cell Biol 1985; 100: 598–605
  • Liu X, Wu H, Byrne M, Krane S, Jaenisch R. Type III collagen is crucial for collagen I fibrillogenesis and for normal cardiovascular development. Proc Natl Acad Sci U S A 1997; 94: 1852–6
  • Mayne R, Wiedemann H, Irwin MH, Sanderson RD, Fitch JM, Linsenmayer TF, et al. Monoclonal antibodies against chicken type IV and V collagens: electron microscopic mapping of the epitopes after rotary shadowing. J Cell Biol 1984; 98: 1637–44
  • Bernard M, Yoshioka H, Rodriguez E, Van der Rest M, Kimura T, Ninomiya Y, et al. Cloning and sequencing of pro-alpha 1 (XI) collagen cDNA demonstrates that type XI belongs to the fibrillar class of collagens and reveals that the expression of the gene is not restricted to cartilagenous tissue. J Biol Chem 1988; 263: 17159–66
  • Muragaki Y, Jacenko O, Apte S, Mattei MG, Ninomiya Y, Olsen BR. The alpha 2(VIII) collagen gene. A novel member of the short chain collagen family located on the human chromosome 1. J Biol Chem 1991; 266: 7721–7
  • Enomoto H, Inoki I, Komiya K, Shiomi T, Ikeda E, Obata K, et al. Vascular endothelial growth factor isoforms and their receptors are expressed in human osteoarthritic cartilage. Am J Pathol 2003; 162(1)171–81
  • Wang Y, Middleton F, Horton JA, Reichel L, Farnum CE, Damron TA. Microarray analysis of proliferative and hypertrophic growth plate zones identifies differentiation markers and signal pathways. Bone 2004; 35(6)171–81
  • Sasano Y, Takahashi I, Mizoguchi I, Kagayama M, Takita H, Kuboki Y. Type X collagen is not localized in hypertrophic or calcified cartilage in the developing rat trachea. Anat Embryol (Berl) 1998; 197(5)399–403

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.