17
Views
19
CrossRef citations to date
0
Altmetric
Original Article

Proteoglycans from Osteoarthritic Human Articular Cartilage Influence Type II Collagen In Vitro Fibrillogenesis

, , , , , & show all
Pages 235-250 | Received 13 Aug 1991, Accepted 30 Sep 1991, Published online: 07 Jul 2009

References

  • Howell D. S., Woessner J. E, Jr., Jimenez S., Seda H., Schumacher H. R., Jr. A view on the pathogenesis of osteoarthritis. Bull. Rheum. Dis. 1979; 29: 996–1001
  • Wood G. C., Keech M. K. The formation of fibrils from collagen solutions. The effect of experimental conditions: kinetic and electron-microscope studies. Biochem. 1960; 75: 588–598
  • Toole B. P, Lowther D. A. Effect of chondroitin sulfate protein on formation of collagen fibrils in vitro. Biochem. 1968; 109: 857–866
  • Oegema T. R., Jr., Laidlaw J., Hascall V. C., Dziewiatkowski D. D. The effect of proteoglycans on the formation of fibrils from collagen solutions. Arch. Biochem. Biophys. 1975; 170: 698–709
  • Snowden J. Mc. K., Swann D. A. Effects of glycosaminoglycans and proteoglycans on the in vitro assembly and thermal stability of collagen fibrils. Biopolymers 1980; 19: 767–780
  • Birk D. E., Lande M. A. Corneal and scleral collagen fiber formation in vitro. Biochim. Biophys. Acta 1981; 670: 362–369
  • Nimni M. E., Deshmuk K. Differences in collagen metabolism between normal and osteoarthritic human articular cartilage. Science 1973; 181: 751–752
  • Gay S., Miller E. J. Osteoarthritis. Collagen in the Physiology and Pathology of Connective Tissue, S. Gay, E. J. Miller. Gustav Fischer, Stuttgart-New York 1973; 101–106
  • Gay S., Rhodes R. K. Immunohistologic demonstration of distinct collagens in normal and osteoarthritic joints. Sem. Arth. Rheum. 1981; 11(Suppl. 1)43–44
  • Kempson G. E., Spivey C. J., Swanson S. A.V, Freeman M. A. R. Patterns of cartilage stiffness on normal and degenerate human femoral heads. J. Biomechanics 1971; 4: 597–609
  • Maroudas A., Evans H., Almeida L. Cartilage of the hip joint. Topographical variation of glycosaminoglycan content in normal and fibrillated tissue. Ann. Rheum. Dis. 1973; 32: 1–9
  • Mankin H. J. The reaction of articular cartilage to injury and osteoarthritis. N. Engl. J. Med. 1974; 291: 1335–1310
  • Vasan N. Proteoglycans in normal and severely osteoarthritic human cartilage. Biochem. J. 1980; 187: 781–787
  • Brandt K. D. Proteoglycans: Structure and metabolism. Arth. Rheum. 1977; 20(suppl)S109–S115
  • Bollet A. J., Nance J. L. Biochemical findings in normal and osteoarthritic articular cartilage. II. Chondroitin sulfate concentration and chain length, water, and ash content. J. Clin. Invest. 1966; 45: 1170–1177
  • Mankin H. J., Lippiello L. The glycosaminoglycans of normal and arthritic cartilage. J. Clin. Invest. 1971; 50: 1712–1719
  • Santer V., White R. J., Roughley P. J. Proteoglycans from normal and degenerate cartilage of the adult human tibial plateau. Arth. Rheum. 1981; 24: 691–700
  • Lippiello L., Hall D., Mankin H. J. Collagen synthesis in normal and osteoarthritic human cartilage. J. Clin. Invest. 1977; 59: 593–600
  • Maroudas A. Proteoglycan osmotic pressure and the collagen tension in normal osteoarthritic human cartilage. Sem. Arth. Rheum. 1981; 11: 36–39
  • Chandrasekhar S., Kleinman H. K., Hassell J. R., Martin G. R., Termine J. D., Trelstad R. L. Regulation of type I collagen fibril assembly by link protein and proteoglycans. Coll. Rel. Res. 1984; 4: 323–338
  • Vogel K. G., Paulsson M., Heinegard D. Specific inhibition of type I and type II collagen fibrillogenesis by the small proteoglycan of tendon. Biochem. J. 1984; 223: 587–597
  • Kuijer R., van de Stadt R. J., de Koning M. H. M. T, van Kampen G. P J., van der Korst J. K. Influence of cartilage proteoglycans on type II collagen fibrillogenesis. Conn. Tiss. Res. 1988; 17: 83–97
  • Rosenberg L. C., Choi H. U, Tang L. H., Johnson T. L., Pal S., Webber C., Reiner A., Poole A. R. Isolation of dermatan sulfate proteoglycans from mature bovine articular cartilages. J. Biol. Chem. 1985; 260: 6304–6313
  • Vogel K. G., Fisher L. W. Comparisons of antibody reactivity and enzyme sensitivity between small proteoglycans from bovine tendon, bone, and cartilage. J. Biol. Chem. 1986; 261: 11334–11340
  • Melching L. I., Roughley P. J. The synthesis of dermatan sulphate proteoglycans by fetal and adult human articular cartilage. Biochem. J. 1989; 262: 501–508
  • Stanescu V., Chaminade F., Muriel M. P. Age-related changes in small proteoglycans of low buoyant density of human articular cartilage. Conn. Tiss. Res. 1988; 17: 239–252
  • Sampaio L. D. O., Bayliss M. T, Hardingham E., Muir H. Dermatan sulfate proteoglycan from human articular cartilage. Variation in its content with age and its structural comparison with a small chondroitin sulfate proteoglycan from pig laryngeal cartilage. Biochem. J. 1988; 254: 757–764
  • Altman R., Asch E., Bloch D., Bole G., Borenstein D., Brandt K., Christy W, Cooke T. D., Greenwald R., Hochberg M., Howell D., Kaplan D., Koopman W., Longley S., III, Mankin H., McShane D. J., Medsger T, Jr., Meenan R., Mikkelsen W., Moskowitz R., Murphy W, Rothschild B., Segal M., Sokoloff L., Wolfe E. Development of criteria for the classification and reporting of osteoarthritis. Classification of osteoarthritis of the knee. Arth. Rheum. 1986; 29: 1039–1049
  • Karvonen R. L., Fernandez-Madrid E, Maughan R. L., Palmer K. C., Fernandez-Madrid I. An animal model of pulmonary radiation fibrosis with biochemical, physiologic, immunologic, and morphologic observations. Radial. Res. 1987; 111: 68–80
  • Monson J. M., Bornstein R. Identification of a disulfide linked procollagen as the biosynthetic precursor of a chick bone collagen. Proc. Natl. Acad. Sci. USA 1973; 70: 3521–3525
  • Miller E. J. Isolation and characterization of alpha-collagen from chick cartilage containing three identical alpha chains. Biochemistry 1975; 11: 4903–4909
  • Reese C. A., Mayne R. Minor collagens of chicken hyaline cartilage. Biochemistry 1981; 20: 5443–5448
  • Laemmli U. K. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 1970; 227: 680–685
  • Merril C. R., Switzer R. C., Van Keuren M. L. Trace polypeptides in cellular extracts and human body fluids detected by two-dimensional electrophoresis and a highly sensitive silver stain. Proc. Natl. Acad. Sci. USA 1979; 76: 4335–4339
  • Heinegard D. Extraction, fractionation and characterization of proteoglycans from bovine tracheal cartilage. Biochim. Biophys. Acta 1972; 285: 181–192
  • Hascall V. C., Kimura J. H. Proteoglycans: Isolation and characterization. Meth. Enzymd. 1982; 82: 769–800
  • Oegema T. R., Jr., Hascall V. C., Dziewiatkowski D. D. Isolation and characterization of proteoglycans from Swarm rat chondrosarcoma. J. Biol. Chem. 1975; 250: 6151–6159
  • Sajdera D. A., Hascall V C. Protein polysaccharide complex from bovine nasal cartilage. A comparison of low and high shear extraction procedures. J. Biol. Chem. 1969; 244: 77–87
  • Woessner J. E, Jr. The determination of hydroxyproline in tissue and protein samples containing small proportions of imino acid. Arch. Biochem. Biophys. 1961; 93: 440–447
  • Duhamel R. C., Meezan E., Brendel K. The addition of SDS to the Bradford dye-binding protein assay, a modification with increased sensitivity to collagen. J. Biochem. Biophys. Meth. 1981; 5: 67–74
  • Bitter J., Muir H. A modified uronic acid carbazole reaction. Anal. Biochem. 1962; 4: 330–334
  • Dische Z. H. A new specific color reaction of hexuronic acids. J. Biol. Chem. 1962; 167: 189–198
  • McDevitt C. A., Muir H. Gel electrophoresis of proteoglycans and glycosaminoglycans on large-pore composite polyacrylamide gels. Anal. Biochem. 1971; 44: 612–622
  • Stanescu V., Maroteaux P, Sobczak E. Proteoglycan populations of baboon (Papio Papio) cartilages from different anatomical sites. Gel electrophoretic analysis of dissociated proteoglycans and of fractions obtained by density gradient centrifugation. Biochim. Biophys. Acta 1980; 629: 371–381
  • Giant T. T, Mikecz K., Poole A. R. Monoclonal antibodies to different protein-related epitopes of human articular cartilage proteoglycans. Biochem. J. 1986; 234: 31–41
  • Williams B. R., Gelman R. A., Poppke D. C., Piez K. A. Collagen fibril formation. Optimal in vitro conditions and preliminary kinetic results. J. Biol. Chem. 1978; 253: 6578–6586
  • Gelman R. A., Williams B. R., Piez K. A. Collagen fibril formation. Evidence for a multistep process. J. Biol. Chem. 1979; 254: 180–186
  • Hascall V C., Sajdera S. W. Physical properties and polydispersity of proteoglycan from bovine nasal cartilage. J. Biol. Chem. 1970; 245: 4920–4930
  • Hascall V. C., Riolo R. L. Characteristics of the protein-keratan sulfate core and of keratan sulfate prepared from bovine nasal cartilage proteoglycan. J. Biol. Chem. 1972; 247: 4529–4538
  • Vogel K. G., Heinegard D. Characterization of proteoglycans from adult bovine tendon. J. Biol. Chem. 1985; 260: 9298–9306
  • Schwartz N. B., Habib G., Campbell S., D'Elvlyn D., Gartner M., Krueger R., Oslon C., Philipson L. Synthesis and structure of proteoglycan core protein. Fed. Proc. 1985; 44: 369–372
  • Pal S., Strider W., Margolis R., Gallo G., Lee-Huang S. Isolation and characterization of proteoglycans from human chondrosarcoma. J. Biol. Chem. 1978; 253: 1279–1289
  • Bayliss M. T., Ali S. Y. Age-related changes in the composition and structure of human articular cartilage proteoglycans. Biochem. J. 1978; 176: 683–693
  • Pearson J. R, Mason R. M. Proteoglycan aggregates in adult human costal cartilage. Biochim. Biophys. Acta 1979; 583: 512–526
  • Heinegard D., Paulsson M., Inerot S., Carlstrom C. A novel low-molecular weight chondroitin sulfate proteoglycan isolated from cartilage. Biochem. J. 1981; 197: 355–366
  • Choi H. U., Johnson T. L., Pal S., Tang L H., Rosenberg L. Characterization of the dermatan sulfate proteoglycans, DS-PGI and DS-PGII, from bovine articular cartilage and skin isolated by octyl-sepharose chromatography. J. Biol. Chem. 1989; 264: 2876–2884
  • Birk D. E., Lande M. A. Corneal and scleral collagen fiber formation in vitro. Biochim. Biophys. Acta 1981; 670: 362–369
  • Lowther D. A., Natarajan M. The influence of glycoprotein on collagen fibril formation in the presence of chondroitin sulfate proteoglycan. Biochem. J. 1972; 127: 607–608
  • Eyre D. R., Wu Y. Y, Apone S. A growing family of collagens in articular cartilage: Identification of 5 genetic types. J. Rheum. 1987; 14(Suppl. 4)25–27
  • Poole C. A., Wotton S. E, Duance V. C. Localization of type IX collagen in chondrons isolated from porcine articular cartilage and rat chondrosarcoma. Histochem. J. 1988; 20: 567–574
  • Lilja S., Barrach H J. Normally sulfated and highly sulfated glycosaminoglycans (GAG) affecting fibrillogenesis of type I and type II collagen in vitro. Exp. Path. 1983; 23: 173–181
  • Kuijer R., van de Stadt R. J., de Koning M. H. M. T., van der Korst J. K. Influence of constituents of proteoglycans on type II collagen fibrillogenesis. Coll. Rel. Res. 1985; 5: 379–391
  • Inerot S., Heinegard D. Bovine tracheal cartilage proteoglycans. Variations in structure and composition with age. Coll. Rel. Res. 1983; 3: 245–262
  • Inerot S., Heinegard D., Audell L., Olsson S. E. Articular-cartilage proteoglycans in aging and osteoarthritis. Biochem. J. 1978; 169: 143–156
  • Roughley R J., White R. J. The use of caesium sulfate density gradient centrifugation to analyze proteoglycans from human articular cartilages of different ages. Biochim. Biophys. Acta 1983; 759: 58–66
  • McDevitt C. A., Giebertson E. M. M., Muir H. An experimental model of osteoarthritis: early morphological and biochemical changes. J. Bone Joint Surg. 1977; 59B: 24–35
  • Bollet A. J. Connective tissue polysaccharide metabolism and the pathogenesis of osteoarthritis. Adv. Int. Med. 1967; 13: 33–60
  • Palmoski M. J., Colyer R. A., Brandt K. D. Marked suppression by salicylate of the augmented proteoglycan synthesis in osteoarthritic cartilage. Arth. Rheum. 1980; 23: 83–91

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.