[1] Kheir E, Shaw D. Hyaline articular cartilage. Orthopaedics and Trauma, 2009, 23, 450–455.
[2] Redman S N, Oldfield S F, Archer C W. Current strategies forarticular cartilage repair. Journal of European Cell and Materials, 2005, 9, 23–32.
[3] Jackson D W, Scheer M J, Simon T M. Cartilage substitutes: Overview of basic science and treatment options. Journal of the American Academy of Orthopaedic Surgeons, 2001, 9, 37–52.
[4] Williams G M, Chan E F, Temple-Wong M M, Bae W C, Masuda K, Bugbee W D, Sah R L. Shape, loading, and motion in the bioengineering design, fabrication, and testing of personalized synovial joints. Journal of Biomechanics, 2010, 43, 156–165.
[5] Firkins P J, Tipper J L, Ingham E, Stone M H, Farrar R, Fisher J. A novel low wearing differential hardness, ceramic-on-metal hip joint prosthesis. Journal of Biomechanics, 2001, 34, 1291–1298.
[6] Pizzoferrato A, Ciapetti G, Stea S, Toni A. Cellular events in the mechanisms of prosthesis loosening. Clinical Materials, 1991, 7, 51–81.
[7] David H. Sochart, Martyn L. Porter. Long-term results of cemented Charnley low-friction arthroplasty in patients aged less than 30 years. The Journal of Arthroplasty, 1998, 13, 123–131.
[8] Munirah S, Samsudin O C, Aminuddin B S, Ruszymah B H I. Expansion of human articular chondrocytes and formation of tissue-engineered cartilage: A step towards exploring a potential use of matrix-induced cell therapy. Tissue and Cell, 2010, 42, 282–292.
[9] Schaefer D, Martin I, Shastri P, Padera R F, Langer R, Freed L E, Vunjak-Novakovic G. In vitro generation of osteochondral composites. Biomaterials, 2000, 21, 2599–2606.
[10] Martin I, Miot S, Barbero A, Jakob M, Wendt D. Osteochondral tissue engineering. Journal of Biomechanics, 2007, 40, 750–765.
[11] Grayson W L, Chao P H G, Marolt D, Kaplan D L, Vunjak-Novakovic G. Engineering custom-designed osteochondral tissue grafts. Trends in Biotechnology, 2008, 26, 181–189.
[12] Karageorgiou V, Kaplan D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials, 2005, 26, 5474–5491.
[13] Bullough P G, Jagannath A. The morphology of the calcification front in articular cartilage: Its significance in joint function. Journal of Bone and Joint Surgery-British Volume, 1983, 65, 72–78.
[14] Mollenhauer J A, Burkardt C, Nisch W, Bossert J, Hempel H J, Jandt K D, Muehleman C. Definition of the joint cartilage-bone interface by topological scanning technologies: Considerations for optimized material interfaces in implant technology. Advanced Engineering Materials, 2007, 9, 1097–1103.
[15] Wang F, Liu Y, Duan X. Study at the structure of calcified cartilage of normal knee cartilage. Chinese Journal of Reparative and Reconstructive Surgery, 2008, 22, 524–527. (in Chinese)
[16] Li G, Park S E, DeFrate L E, Schutzer M E, Ji L, Gill T J, Rubash H E. The cartilage thickness distribution in the tibiofemoral joint and its correlation with cartilage-to-cartilage contact. Clinical biomechanics, 2005, 20, 736–744.
[17] Swann A C, Seedhom B B. The stiffness of normal articular cartilage and the predominant acting stress levels: Implications for the aetiology of osteoarthrosis. British Journal of Rheumatology, 1993, 32, 16–25.
[18] Yao J Q, Seedhom B B. Functional adaptation of the thickness of human articualar cartilage. British Journal of Rheumatology, 1993, 32, 956–965.
[19] Hunziker E B, Quinn T M, Hauselmann H J. Quantitative structural organization of normal adult human articular cartilage. Osteoarthritis and Cartilage, 2002, 10, 564–572.
Akizuki S, Mow V C, Muller F. Tensile properties of human knee joint cartilage: I. Influence of ionic conditions, weight bearing, and fibrillation on the tensile modulus. Journal of Orthopaedic Research, 1986, 4, 379–392.
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