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Original

bFGF influences human articular chondrocyte differentiation

, MD, , , , , , & show all
Pages 184-193 | Published online: 07 Jul 2009

References

  • Vincent T, Hermansson M, Bolton M, et al. Basic FGF mediates an immediate response of articular cartilage to mechanical injury. Proc Natl Acad Sci USA 2002; 99: 8259–64
  • Wang X, Manner PA, Horner A, et al. Regulation of MMP-13 expression by RUNX2 and FGF2 in osteoarthritic cartilage. Osteoarthritis Cartilage 2004; 12: 963–73
  • Brittberg M, Lindahl A, Nilsson A, et al. Treatment of deep cartilage defects in the knee with autologous chondrocyte transplantation. N Engl J Med 1994; 331: 889–95
  • Hunziker EB. Articular cartilage repair: basic science and clinical progress. A review of the current status and prospects. Osteoarthritis Cartilage 2002; 10: 432–63
  • Marlovits S, Hombauer M, Tamandl D, et al. Quantitative analysis of gene expression in human articular chondrocytes in monolayer culture. Int J Mol Med 2004; 13: 281–7
  • Saadeh PB, Brent B, Mehrara BJ, et al. Human cartilage engineering: chondrocyte extraction, proliferation, and characterization for construct development. Ann Plast Surg 1999; 42: 509–13
  • Gospodarowicz D. Purification of a fibroblast growth factor from bovine pituitary. J Biol Chem 1975; 250: 2515–20
  • Praul CA, Ford BC, Leach RM. Effect of fibroblast growth factors 1, 2, 4, 5, 6, 7, 8, 9, and 10 on avian chondrocyte proliferation. J Cell Biochem 2002; 84: 359–66
  • Dailey L, Laplantine E, Priore R, Basilico C. A network of transcriptional and signaling events is activated by FGF to induce chondrocyte growth arrest and differentiation. J Cell Biol 2003; 161: 1053–66
  • Krejci P, Bryja V, Pachernik J, et al. FGF2 inhibits proliferation and alters the cartilage-like phenotype of RCS cells. Exp Cell Res 2004; 297: 152–64
  • Trippel SB, Wroblewski J, Makower AM, et al. Regulation of growth-plate chondrocytes by insulin-like growth-factor I and basic fibroblast growth factor. J Bone Joint Surg Am 1993; 75: 177–89
  • Iwamoto M, Shimazu A, Nakashima K, et al. Reduction of basic fibroblasts growth factor receptor is coupled with terminal differentiation of chondrocytes. J Biol Chem 1991; 266: 461–7
  • Shimoaka T, Ogasawara T, Yonamine A, et al. Regulation of osteoblast, chondrocyte, and osteoclast functions by fibroblast growth factor (FGF)-18 in comparison with FGF-2 and FGF-10. J Biol Chem 2002; 277: 7493–500
  • Minina E, Kreschel C, Naski MC, et al. Interaction of FGF, Ihh/Pthlh, and BMP signaling integrates chondrocyte proliferation and hypertrophic differentiation. Dev Cell 2002; 3: 439–49
  • Wroblewski J, Edwall-Arvidsson C. Inhibitory effects of basic fibroblast growth factor on chondrocyte differentiation. J Bone Miner Res 1995; 10: 735–42
  • Weksler NB, Lunstrum GP, Reid ES, Horton WA. Differential effects of fibroblast growth factor (FGF) 9 and FGF2 on proliferation, differentiation and terminal differentiation of chondrocytic cells in vitro. Biochem J 1999; 342: 677–82
  • Reijman M, Hazes JM, Koes BW, et al. Validity, reliability, and applicability of seven definitions of hip osteoarthritis used in epidemiological studies: a systematic appraisal. Ann Rheum Dis 2004; 63: 226–32
  • Berridge MV, Tan AS. Characterization of the cellular reduction of 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT): subcellular localization, substrate dependence, and involvement of mitochondrial electron transport in MTT reduction. Arch Biochem Biophys 1993; 303: 474–82
  • Fried J, Perez AG, Clarkson BD. Flow cytofluorometric analysis of cell cycle distributions using propidium iodide. Properties of the method and mathematical analysis of the data. J Cell Biol 1976; 71: 172–81
  • Krishan A, Paika K, Frei E, III. Cytofluorometric studies on the action of podophyllotoxin and epipodophyllotoxins (VM-26, VP-16–213) on the cell cycle traverse of human lymphoblasts. J Cell Biol 1975; 66: 521–30
  • Kusuzaki K, Sugimoto S, Takeshita H, et al. DNA cytofluorometric analysis of chondrocytes in human articular cartilages under normal aging or arthritic conditions. Osteoarthritis Cartilage 2001; 9: 664–70
  • Hail N, Jr, Lotan R. Examining the role of mitochondrial respiration in vanilloid-induced apoptosis. J Natl Cancer Inst 2002; 94: 1281–92
  • Terato K, Hasty KA, Reife RA, et al. Induction of arthritis with monoclonal antibodies to collagen. J Immunol 1992; 148: 2103–8
  • Ho AK, Girard M, Young I, Chik CL. Intracellular pH on adrenergic-stimulated cAMP and cGMP production in rat pinealocytes. Am J Physiol 1991; 261: C642–9
  • Schmal H, Czermak BJ, Lentsch AB, et al. Soluble ICAM-1 activates lung macrophages and enhances lung injury. J Immunol 1998; 161: 3685–93
  • Duan X, Wu J, Dong S. [A study on the morphological characters of immortalized mandibular condylar chondrocyte]. Hua Xi Kou Qiang Yi Xue Za Zhi 2002; 20: 169–71
  • Madry H, Emkey G, Zurakowski D, Trippel SB. Overexpression of human fibroblast growth factor 2 stimulates cell proliferation in an ex vivo model of articular chondrocyte transplantation. J Gene Med 2004; 6: 238–45
  • Bujia J, Sittinger M, Wilmes E, Hammer C. Effect of growth factors on cell proliferation by human nasal septal chondrocytes cultured in monolayer. Acta Otolaryngol 1994; 114: 539–43
  • Mandl EW, Jahr H, Koevoet JL, et al. Fibroblast growth factor-2 in serum-free medium is a potent mitogen and reduces dedifferentiation of human ear chondrocytes in monolayer culture. Matrix Biol 2004; 23: 231–41
  • Schmal H, Mehlhorn AT, Fehrenbach M, et al. Regulative mechanisms of chondrocyte adhesion. Tissue Eng 2006; 12: 741–50
  • Stupack DG, Cheresh DA. Get a ligand, get a life: integrins, signaling and cell survival. J Cell Sci 2002; 115: 3729–38
  • Salter DM, Godolphin JL, Gourlay MS. Chondrocyte heterogeneity: immunohistologically defined variation of integrin expression at different sites in human fetal knees. J Histochem Cytochem 1995; 43: 447–57
  • Durr J, Goodman S, Potocnik A, et al. Localization of beta 1-integrins in human cartilage and their role in chondrocyte adhesion to collagen and fibronectin. Exp Cell Res 1993; 207: 235–44
  • Ostergaard K, Salter DM, Petersen J, et al. Expression of alpha and beta subunits of the integrin superfamily in articular cartilage from macroscopically normal and osteoarthritic human femoral heads. Ann Rheum Dis 1998; 57: 303–8
  • Schmal H, Mehlhorn AT, Zwingmann J, et al. Stimulation of chondrocytes in vitro by gene transfer with plasmids coding for epidermal growth factor (hEGF) and basic fibroblast growth factor (bFGF). Cytotherapy 2005; 7: 292–300
  • Aigner T, Dietz U, Stoss H, von der Mark K. Differential expression of collagen types I, II, III, and X in human osteophytes. Lab Invest 1995; 73: 236–43
  • Klein S, Giancotti FG, Presta M, et al. Basic fibroblast growth factor modulates integrin expression in microvascular endothelial cells. Mol Biol Cell 1993; 4: 973–82
  • Klein S, Bikfalvi A, Birkenmeier TM, et al. Integrin regulation by endogenous expression of 18-kDa fibroblast growth factor-2. J Biol Chem 1996; 271: 22583–90
  • Knutsen G, Engebretsen L, Ludvigsen TC, et al. Autologous chondrocyte implantation compared with microfracture in the knee. A randomized trial. J Bone Joint Surg Am 2004; 86A: 455–64

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