1997 William J. Stickel Gold Award. Morphological and Biochemical Properties of Metatarsophalangeal Joint Cartilage
Abstract
Morphology and Biochemistry
Matrix Metalloproteinases
Materials and Methods
Specimen Collection and Preparation
Histology
Biochemistry
In situ Hybridization
Immunohistochemistry
Western Blot Analysis
SDS-PAGE for Collagen Type Determination
Statistical Analysis
Results
General Cartilage Characteristics
Cartilage Thickness
Chondrocyte Density
Proteoglycan-to-Collagen Ratios
In situ Hybridization
Immunohistochemistry
Western Blot Analysis
Determination of Collagen Type
Discussion
Conclusions
Acknowledgments
References
- MUEHLEMAN, C; BAREITHER, D; HUCH, K; et al. Comparison of incidence of osteoarthritis in the foot and other joints of the lower extremity. Proc Orthop Res Soc 1996, 21, 747. [Google Scholar]
- MUEHLEMAN, C; BAREITHER, D; HUCH, K. Prevalence of degenerative morphological changes in the joints of the lower extremity. J Osteo Cartil 1997, 5, 23. [Google Scholar] [CrossRef]
- RADIN, EL; PAUL, IL. Does cartilage compliance reduce skeletal properties of articular cartilage, synovial fluid, periarticular soft tissues and bone? Arthritis Rheum 1970, 13, 139. [Google Scholar] [CrossRef]
- EYRE, DR; APONE, S; WU, JJ; et al. Collagen type IX: evidence for covalent linkages to type II collagen in cartilage. FEBS Lett 1987, 220, 337. [Google Scholar] [CrossRef] [PubMed]
- VAN DER REST M, MAYNE R: Type IX collagen proteoglycan from cartilage is covalently cross linked to type II collagen. J Biol Chem 1988, 263, 1615. [CrossRef]
- MENDLER, M; EICH-BENDER, SG; VAUGHAN, L; et al. Cartilage contains mixed fibrils of collagen types II, IX and XI. J Cell Biol 1989, 108, 191. [Google Scholar]
- MOW, VC; SETTON, LA; RATCLIFFE, A; et al. “Structure-Function Relationships for Articular Cartilage and Effects of Joint Instability and Trauma on Cartilage Function,” in Cartilage Changes in Osteoarthritis, ed by KD Brandt, Indiana University School of Medicine, Indianapolis, 1990.
- HUNZIKER, E. “Articular Cartilage Structure in Humans and Experimental Animals,” in Articular Cartilage and Osteoarthritis; Kuettner, KE, Ed.; Raven Press: New York, 1992. [Google Scholar]
- MUEHLEMAN, C; ARSENIS, CH. Articular cartilage: part I. the normal joint. JAPMA 1995, 85, 277. [Google Scholar] [CrossRef]
- BERNARD, PF; CHRISTEL, PS; MEUNIER, A; et al. Role of articular incongruence and cartilage thickness in hip joint stresses distribution: a biphasic and two-dimensional photoelastic study. Acta Orthop Belg 1982, 48, 335. [Google Scholar] [PubMed]
- LOTHE, K; SPYCHER, MA; RÜTTNER, JR. Human articular cartilage in relation to age: a morphometric study. Exp Cell Biol 1979, 47, 22. [Google Scholar] [CrossRef] [PubMed]
- KURRAT, HJ; OBERLANDER, W. The thickness of the cartilage in the hip joint. J Anat 1978, 126, 145. [Google Scholar] [PubMed]
- KLADNEY, B; BAIL, H; SWOBODA, B. ET AL: Cartilage thickness measurement in magnetic resonance imaging. J Osteo Cartil 1996, 4, 181. [Google Scholar] [CrossRef] [PubMed][Green Version]
- VIGNON, E; ARLOT, M; PATRICOT, LM. ET AL: The cell density of human femoral head cartilage. Clin Orthop 1976, 121, 303. [Google Scholar] [CrossRef]
- MEACHIM G: Effect of age on the thickness of adult articular cartilage at the shoulder joint. Ann Rheum Dis 1971, 30, 43. [CrossRef]
- SIMON, WH. Scale effects in animal joints: thickness and elasticity in the deformability of articular cartilage. Arthritis Rheum 1971, 14, 493. [Google Scholar] [CrossRef] [PubMed]
- VENN MF: Variation of chemical composition with age in human femoral head cartilage. Ann Rheum Dis 1978, 37, 168. [CrossRef]
- FICAT C, MAROUDAS A: Cartilage of the patella: topographical variation of glycosaminoglycan content in normal and fibrillated tissue. Ann Rheum Dis 1975, 34, 515. [CrossRef] [PubMed]
- VENN, M; MAROUDAS, A. Chemical composition and swelling of normal and osteoarthritic femoral head cartilage: I. chemical composition. Ann Rheum Dis 1977, 36, 121. [Google Scholar] [CrossRef]
- MALEMUD, CJ. Changes in proteoglycans in osteoarthritis. J Rheumatol 1991, 27, 60. [Google Scholar]
- BJELLE, AD; ANTONOPOULOS, CA. HJERTQUIST S-O: Fractionation of glycosaminoglycans of human articular cartilage on ecteola cellulose in aging and in osteoarthrosis. Calcif Tissue Res 1972, 8, 237. [Google Scholar] [CrossRef]
- LEMPERG, R; LARSON, S-E. HJERTQUIST S-O: The glycosaminoglycans of bovine articular cartilage: I. concentration and distribution in different layers in relation to age. Calcif Tissue Res 1974, 15, 237. [Google Scholar] [CrossRef]
- ROUGHLY, PJ; WHITE, RJ. Age-related changes in the structure of the proteoglycan subunits from human articular cartilage. J Biol Chem 1980, 255, 217. [Google Scholar] [CrossRef]
- MORT, JS; POOLE, AR; ROUGHLY, PJ. Age-related changes in the structure of proteoglycan link proteins present in normal human articular cartilage. Biochem J 1983, 214, 269. [Google Scholar] [CrossRef]
- PLAAS, AH; SANDY, JD. Age-related decrease in the linkstability of proteoglycan aggregates formed by articular chondrocytes. Biochem J 1984, 220, 337. [Google Scholar] [CrossRef] [PubMed]
- WOESSNER, JF. Matrix metalloproteinases and their inhibitors in connective tissue remodeling. FASEB J 1991, 5, 2145. [Google Scholar] [CrossRef]
- FOSANG, AJ; NEAME, PJ; HARDINGHAM, TE; et al. Cleavage of cartilage proteoglycan between G1 and G2 domains by stromelysin. J Biol Chem 1991, 266, 15579. [Google Scholar] [CrossRef] [PubMed]
- FOSANG, AJ; LAST, K; KNAUPER, V; et al. Fibroblast and neutrophil collagenase cleave at two sites in the cartilage aggrecan interglobular domain. Biochem J 1993, 295, 273. [Google Scholar] [CrossRef] [PubMed]
- CHUBINSKAYA, S; HUCH, K; MIKECZ, K; ET, AL. Chondrocyte matrix metalloproteinase-8: up-regulation of neutrophil collagenase by interleukin-1 in human cartilage from knee and ankle joints. Lab Invest 1996, 74, 232. [Google Scholar] [PubMed]
- ROSENBERG L: The chemical basis for the histological use of safranin O in the study of articular cartilage. J Bone Joint Surg Am 1971, 53, 69. [CrossRef]
- CHANDRASEKHAR S: Microdetermination of proteoglycans and glycosaminoglycans in the presence of guanidine hydrochloride. Anal Biochem 1987, 161, 103. [CrossRef]
- SCHWARTZ, DE; CHOI, Y; SANDELL, LJ; et al. Quantitative analysis of collagen, protein and DNA in fixed, paraffin-embedded and sectioned tissue. Histochem J 1985, 17, 655. [Google Scholar] [CrossRef]
- SANDELL, LJ; MORRIS, N; ROBBINS, JR; ET, AL. Alternatively spliced type II procollagen mRNAs define distinct populations of cells during vertebral development: differential expression of the amino-propeptide. J Cell Biol 1991, 114, 1307. [Google Scholar] [CrossRef]
- HIROSE, T; PATTERSON, C; POURMOTABBED, T. ET AL: Structure-function relationship of human neutrophil collagenase: identification of regions responsible for substrate specificity and general proteinase activity. Proc Natl Acad Sci U S A 1990, 90, 2569. [Google Scholar] [CrossRef]
- GLANT, T; MIKECZ, K. Antigenic profile of human, bovine and canine articular chondrocytes. Cell Tissue Res 1986, 224, 359. [Google Scholar]
- HASTY, KA; REIFE, RA; KANG, AH; ET, AL. The role of stromelysin in the cartilage destruction that accompanies inflammatory arthritis. Arthritis Rheum 1990, 33, 388. [Google Scholar] [CrossRef] [PubMed]
- COLE, AA; CHUBINSKAYA, S; SCHUMACHER, B. ET AL: Chondrocyte matrix metalloproteinase-8: human articular chondrocytes express neutrophil collagenase. J Biol Chem 1996, 271, 11023. [Google Scholar] [CrossRef] [PubMed]
- TOWBIN, H; STAEHELIN, T; GORDON, J. Transfer of proteins from gels to diazobenzyloxymethyl paper and detection with antisera: a method for studying antibody specificity and antigen structure. Proc Natl Acad Sci USA 1979, 76, 3116. [Google Scholar]
- ROOT, ML; ORIEN, WP. WEED JH: Normal and Abnormal Function of the Foot: Clinical Biomechanics; Clinical Biomechanics Corp: Los Angeles, 1977; Vol 2. [Google Scholar]
- BENNETT, PJ; DUPLOCK, LR. Pressure distribution beneath the human foot. JAPMA 1993, 83, 674. [Google Scholar] [CrossRef]
- BULLOUGH, PG. “The Pathology of Osteoarthritis,” in Osteoarthritis: Diagnosis and Medical/Surgical Management, 2nd Ed; Moskowitz, RW, Howell, DS, Goldberg, VM, Eds.; WB Saunders: Philadelphia, 1992. [Google Scholar]
- HOWELL, DS. “Etiopathogenesis of Osteoarthritis,” in Arthritis and Allied Conditions: A Textbook of Rheumatology, 11th Ed; McCarty, DJ, Lea, Febiger, Eds.; Philadelphia, 1989. [Google Scholar]
- ARMSTRONG, CG; GARDNER, DL. Thickness and distribution of human femoral head articular cartilage: changes with age. Ann Rheum Dis 1977, 36, 407. [Google Scholar] [CrossRef]
- MEACHIM, G; COLLINS, DH. Cell count of normal osteoarthritic articular cartilage in relation to the uptake of sulfate (35SO4) in vitro. Ann Rheum Dis 1962, 21, 45. [Google Scholar] [CrossRef]
- AYDELOTTE, MB; SCHUMACHER, BL; KUETTNER, KE. “Heterogeneity of Articular Chondrocytes,” in Articular Cartilage and Osteoarthritis; Kuettner, KE, Ed.; Raven Press: New York, 1992. [Google Scholar]
- 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. [Google Scholar] [CrossRef]
- GRUSHKO, G; SCHNEIDERMAN, R. MAROUDAS A: Some biochemical and biophysical parameters for the study of the pathogenesis of osteoarthritis: a comparison between the process of aging and degeneration in human hip cartilage. Connect Tissue Res 1989, 19, 149. [Google Scholar] [CrossRef] [PubMed]
- SCHER, DM; STOLERMAN, ES. DI CESARE PE: Biologic markers of arthritis. Am J Orthop 1996, 25, 263. [Google Scholar] [PubMed]
- ROBERTS, S; WEIGHTMAN, B; URBAN, J; et al. Mechanical and biochemical properties of human articular cartilage in osteoarthritic femoral head and in autopsy specimens. J Bone Joint Surg Br 1986, 68, 278. [Google Scholar] [CrossRef] [PubMed]









© 1997 American Podiatric Medical Association
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Muehleman, C.; Chubinskaya, S.; Cole, A.A.; Noskina, Y.; Arsenis, C.; Kuettner, K.E. 1997 William J. Stickel Gold Award. Morphological and Biochemical Properties of Metatarsophalangeal Joint Cartilage. J. Am. Podiatr. Med. Assoc. 1997, 87, 447-459. https://doi.org/10.7547/87507315-87-10-447
Muehleman C, Chubinskaya S, Cole AA, Noskina Y, Arsenis C, Kuettner KE. 1997 William J. Stickel Gold Award. Morphological and Biochemical Properties of Metatarsophalangeal Joint Cartilage. Journal of the American Podiatric Medical Association. 1997; 87(10):447-459. https://doi.org/10.7547/87507315-87-10-447
Chicago/Turabian StyleMuehleman, Carol, Susan Chubinskaya, Ada A. Cole, Yelina Noskina, Charalampos Arsenis, and Klaus E. Kuettner. 1997. "1997 William J. Stickel Gold Award. Morphological and Biochemical Properties of Metatarsophalangeal Joint Cartilage" Journal of the American Podiatric Medical Association 87, no. 10: 447-459. https://doi.org/10.7547/87507315-87-10-447
APA StyleMuehleman, C., Chubinskaya, S., Cole, A. A., Noskina, Y., Arsenis, C., & Kuettner, K. E. (1997). 1997 William J. Stickel Gold Award. Morphological and Biochemical Properties of Metatarsophalangeal Joint Cartilage. Journal of the American Podiatric Medical Association, 87(10), 447-459. https://doi.org/10.7547/87507315-87-10-447