189
Views
6
CrossRef citations to date
0
Altmetric
Research Article

Articular Cartilage Compression: How Microstructural Response Influences Pore Pressure in Relation to Matrix Health

, &
Pages 132-149 | Received 11 Jan 2009, Accepted 11 Jun 2009, Published online: 15 Dec 2009

REFERENCES

  • Oloyede, A., and Broom, N.D. (1993a). Is classical consolidation theory applicable to articular cartilage deformation? Clin. Biomech., 6, 206–212.
  • Oloyede, A., and Broom, N.D. (1993b). Stress-sharing between the fluid and solid components of articular cartilage under varying rates of compression. Connect. Tissue Res., 30, 127–141.
  • Oloyede, A., and Broom, N.D. (1994a). Complex nature of stress inside loaded articular cartilage. Clin. Biomech., 9, 149–156.
  • Oloyede, A., and Broom, N.D. (1994b). The generalised consolidation of articular cartilage: an investigation of its near-physiological response to static load. Connect. Tissue Res., 31, 75–86.
  • Soltz, M.A., and Ateshian, G.A. (1998). Experimental verification and theoretical prediction of cartilage interstitial fluid pressurization at an impermeable contact interface in confined compression. J. Biomech., 31, 927–934.
  • Soltz, M.A., and Ateshian, G.A. (2000). Interstitial fluid pressurization during confined compression cyclical loading of articular cartilage. Ann. Biomed. Eng., 28, 150–159.
  • Notzli, H., and Clark, J. (1997). Deformation of loaded articular cartilage prepared for scanning electron microscopy with rapid freezing and freeze-substitution fixation. J. Orthop. Res., 15, 76–86.
  • Kaab, M.J. (2000). Effect of mechanical load on articular cartilage collagen structure: a scanning electron-microscopic study. Cells Tissue Organs., 167, 106–120.
  • Glaser, C., and Putz, R. (2002). Functional anatomy of articular cartilage under compressive loading quantitative aspects of global, local and zonal reactions of the collagenous network with respect to the surface integrity. Osteoarthr. Cart., 10, 83–99.
  • Thambyah, A., and Broom, N.D. (2006). Micro-anatomical response of cartilage-on-bone to compression: mechanisms of deformation within and beyond the directly loaded matrix. J. Anat., 209, 611–622.
  • Thambyah, A., and Broom, N.D. (2007). On how degeneration influences load-bearing in the cartilage-bone system: a microstructural and micromechanical study. Osteoarthr. Cart., 15, 1410–1423.
  • Li, L.P., Korhonen, R.K., Iivarinen, J., Jurvelin, J.S., and Herzog, W. (2008). Fluid pressure driven fibril reinforcement in creep and relaxation tests of articular cartilage. Med. Eng. Phys., 30, 182–189.
  • Julkunen, P, Korhonen, R.K., Herzog, W., and Jurvelin, J.S. (2008). Uncertainties in indentation testing of articular cartilage: a fibril-reinforced poroviscoelastic study. Med. Eng. Phys., 30, 506–515.
  • Meachim, G. (1972). Light microscopy of indian ink preparations of fibrillated cartilage. Ann. Rheum. Dis., 31, 457–64.
  • Outerbridge, R.E. (1961). The etiology of chondromalacia patellae. J. Bone Joint Surg., 43b, 752–757.
  • Maroudas, A., and Venn, M. (1977). Chemical composition and swelling of normal and osteoarthrotic femoral head cartilage. Ann. Rheum. Dis., 36, 399–406.
  • Maroudas, A., Bayliss, M.T., and Venn, M.F. (1980). Further studies on the composition of human femoral head cartilage. Ann. Rheum. Dis., 39, 514–523.
  • Mizrahi, J., Maroudas, A., Lanir, Y., Ziv, I., and Weber, T.J. (1986). The “instantaneous” deformation of cartilage: effects of collagen fiber orientation and osmotic stress. Bioreheology, 23, 311–330.
  • Broom, N.D., and Flachsmann, R. (2003). Physical indicators of cartilage health: the relevance of compliance, thickness, swelling and fibrillar texture. J. Anat., 202, 481–494.
  • Clark, A.L., Leonard, T.R., Barclay, L.D., Matyas, J.R., and Herzog, W. (2006). Heterogeneity in patellofemoral cartilage adaptation to anterior cruciate ligament transection; chondrocyte shape and deformation with compression. Osteoarthr. Cart., 14, 120–130.
  • Martel-Pelletier, J., Boileau, C., Pelletier, J.-P., and Roughley, P.J. (2008). Cartilage in normal and osteoarthritis conditions. Best Pract. Res. Clin. Rheumatol., 22, 351–384.
  • Mahajan, A., Verma, S., and Tandon, V. (2005). Osteoarthritis. J. Assoc. Physicians India, 53, 634–641.
  • Huber, M., Trattnig, S., and Lintner, F. (2000). Anatomy, biochemistry, and physiology of articular cartilage. Invest. Radiol., 35, 573–580.
  • Broom, N.D. (1982). Abnormal softening in articular cartilage. Arthr. Rheum., 25, 1209–1216.
  • Broom, N.D. (1984). The altered biomechanical state of human femoral head osteoarthritic articular cartilage. Arthr. Rheum., 27, 1028–1039.
  • Chen, M.-H., and Broom, N.D. (1999). Concerning the ultrastructural origin of large-scale swelling in articular cartilage. J. Anat., 194, 445–461.
  • Mansour, J.M., and Mow, V.C. (1976). The permeability of articular cartilage under compressive strain at high pressures. J. Bone Joint Surg. Am., 58, 509–516.
  • Oloyede, A., and Broom, N.D. (1993). A physical model for the time-dependant deformation of articular cartilage. Connect. Tissue Res., 29, 251–261.
  • Murakami, T., Sakai, N., Sawae, Y., Tanaka, K., and Ihara, M. (2004). Influence of proteoglycan on time-dependant mechanical behaviors of articular cartilage under constant total compressive deformation. JSME, 47, 1049–1055.
  • Torzilli, P.A. (1993). Effects of temperature, concentration and articular surface removal on transient solute diffusion in articular cartilage. Med. Biol. Eng., 31, S93–S98.
  • Balasubramanian, A.S., and Bachhawat, B.K. (1980). Chemistry and biological significance of important conjugated constituents of cells. In Textbook of Biochemistry and Human Biology, 3rd ed., G.P., Talwar, and L.M., Srivastava. ( eds.), pp. 126–127. New Delhi, India: Prentice Hall of India.
  • Maroudas, A. (1979). Physico-chemical properties of articular cartilage. In Adult Articular Cartilage, 2nd ed., M.A.R., Freeman, ( ed.), pp. 215–290. London: Pitman Medical.
  • Coduto, D.P. (1999). Strength. In D.P. Coduto ( ed.), Geotechnical engineering: Principles and Practices, pp. 480–493. Upper Saddle River, NJ: Prentice Hall.
  • Ikari, M., Saffer, D., Marone, C., and Samuelson, (2006). Shear induced pore pressure gradients in Montmorillonite-based fault gouge. American Geophysical Union, Fall Meeting, San Francisco, CA, abstract #T21D-0455.
  • Bishop, A.W. (1954). The use of pore-pressure coefficients in practice. Geotechnique, 4, 148–152.
  • Henkel, D.J. (1960). The shear strength of saturated remoulded clays. In Proc. Res. Conf. Shear Strength of Cohesive Soils, ASCE, 533–554.
  • Oloyede, A., Broom, N.D., and Martinez, J.B. (1998). Experimental factors governing the internal stress state of the intervertebral disc. Med. Eng. Phys., 20, 631–637.
  • Broom, N.D. (1988). An enzymatically induced structural transformation in articular cartilage. Arthri. Rheum., 31, 210–218.
  • Broom, N.D., Ngo, T., and Tham, E. (2005). Traversing the intact/fibrillated joint surface: a biomechanical interpretation. J. Anat., 206, 55–67.
  • Bush, P.G., and Hall, A.C. (2003). The volume and morphology of chondrocytes within non-degenerate and degenerate human articular cartilage. Osteoarthr. Cart., 11, 242–251.
  • Carter, D.R., Beaupre, G.S., Wong, M., Smith, L., Andriacchi, T.P., and Schurman, D.J. (2004). The mechanobiology of articular cartilage development and degeneration. Clin. Orthop. Relat. Res., 427S, 69–77.
  • Wilson, W., van Burken, C., van Donkelaar, C.C., Buma, Pieter, van Rietbergen, B., and Huiskes, R. (2006). Causes of mechanically induced collagen damage in articular cartilage. J. Orthop. Res., 24, 220–228.
  • Smith, R.L., Carter, D.R., and Schurman, D.J. (2004). Pressure and shear differentially alter human articular chondrocyte metabolism. Clin. Orthop. Relat. Res., 427S, S89–S95.
  • Broom, N.D., and Poole, A.C. (1983). Articular cartilage collagen and proteoglycans. Arthr. Rheum., 26, 1111–1119.
  • Brand, R.A. (2005). Joint contact stress: a reasonable surrogate for biological processes?, Iowa Orthop. J., 25, 82–94.
  • Basalo, I.M., Mauck, R.L., Kelly, T.N., Nicoll, S.B., Chen, F.H., Hung, C.T., and Ateshian, G.A. (2004). Cartilage interstitial fluid load support in unconfined compression following enzymatic digestion. ASME, 126, 779–786.
  • Willett, T.L., Whiteside, R., Wild, P.M., Wyss, P.M., and Anastassiades, T. (2005). Artefacts in the mechanical characterization of porcine articular cartilage due to freezing. Proc IMechE, 219, 23–29.
  • Keinan-Adamsky, K., Shinar, H., and Navon, G. (2005). The effect of detachment of the articular cartilage from its calcified zone on the cartilage microstructure, assessed by H-spectroscopic double quantum filtered MRI. J. Orthop. Res., 23, 109–117.

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.