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Tissue engineering cartilage

Given the impact of such severe condition, scientists are pursuing different strategies to successfully repair or regenerate the lost tissue, but until now the ideal therapy is still being chased. This therapy would not only restore the frictionless movement [Pg.128]

Fnnctional alginate hydrogels have been produced by the incorporation of tobacco mosaic virus to take advantage of its well-defined genetic/chemical modnlarity, multivalency, and well-defined strnctnral features. It was demonstrated that according to the peptidic features exhibited by the viral particles, the cell attachment and differentiation [Pg.129]


Fig. 11 Fiber architecture of a 3D orthogonally woven structure for cartilage tissue engineering, (a) Interlocking multiple layers of two sets of in-plane fibers (x- and y-direction). (b, c) Third set of fibers in the -direction cross-sectional views are of the Y—Z plane (b) and X-Z plane (c). Fig. 11 Fiber architecture of a 3D orthogonally woven structure for cartilage tissue engineering, (a) Interlocking multiple layers of two sets of in-plane fibers (x- and y-direction). (b, c) Third set of fibers in the -direction cross-sectional views are of the Y—Z plane (b) and X-Z plane (c).
Suh, J.K.F. Matthew, H.W.T. Application of chitosan-based polysaccharide biomaterials in cartilage tissue engineering A review. Biomaterials 2000, 21, 2589-2598. [Pg.2038]

Subramanian A et al (2004) Synthesis and evaluation of scaffolds prepared from chitosan fibers for potential use in cartilage tissue engineering. Biomed Sci Instrum 40 117-122... [Pg.211]

Subramanian A et al (2005) Preparation and evaluation of the electrospun chitosan/PEO fibers for potential applications in cartilage tissue engineering. J Biomater Sci Polym Ed 16(7) 861-873... [Pg.211]

Tan HP, Chu CR et al (2009) Injectable in situ forming biodegradable chitosan-hyaluronic acid based hydrogels for cartilage tissue engineering. Biomaterials 30 2499-2506... [Pg.42]

Table 3 Work done in the field of cartilage tissue engineering... Table 3 Work done in the field of cartilage tissue engineering...
Yan LP, Wang YJ, Wu G et al (2010) Genipin-cross-linked collagen/chitosan biomimetic scaffolds for articular cartilage tissue engineering applications. J Biomed Mater Res 95A 465 75... [Pg.76]

Yamane S, Iwasaki N, Majima T et al (2005) Eeasibility of chitosan-based hyaluronic acid hybrid biomaterial for a novel scaffold in cartilage tissue engineering. Biomaterials 26 611-619... [Pg.77]

Chen YL, Lee HP, Chan HY et al (2007) Composite chondroitin-6-sulfate/dermatan sulphate/ chitosan scaffolds for cartilage tissue engineering. Biomaterials 28 2294—2305... [Pg.77]

Lao L, Tan H, Wang Y et al (2008) Chitosan modified poly(l-lactide) microspheres as cell microcarriers for cartilage tissue engineering. Colloids Surf B Biointerfaces 66 218-225... [Pg.77]

Tan H, Wu J, Lao L (2009) Gelatin/chitosan/hyaluronan scaffold integrated with PLGA microspheres for cartilage tissue engineering. Acta Biomater 5 328-337... [Pg.77]

Martens, P. J., Bryant, S. J., Anseth, K. S. Tailoring the degradation of hydrogels formed from multivinyl polyfethylene glycol) and polyfvinyl alcohol) macromers for cartilage tissue engineering. Biomacromolecules. 2003, 4, 283-292. [Pg.928]

Li, W. Tuli, R. Okafor, C. Derfoul, A. Danielson, K.G. Hall, D.J. Tuan, R.S. A three-dimensional nanofibrous scaffold for cartilage tissue engineering using human mesenchymal stem cells. Biomaterials 2005, 26 (6), 599-609. [Pg.1330]

In Muller s work [51], non-woven cellulose II fabrics were used as scaffolds for in vitro cartilage tissue engineering. The scaffolds were activated in a saturated Ca[OH]2 solution and subsequently coated with a calcium phosphate layer precipitated from a supersaturated physiological solution. Chondrocyte cell response and cartilage development were investigated. The cell adherence was significantly improved compared to untreated cellulose fabrics, and the proliferation and vitality of the adhered chondrocytes were excellent, indicating the biocompatibility of these materials. [Pg.113]

Muller, F. A., Muller, L., Hofmann, I., Greila, R, Wenzel, M. M., and Staudenmaier, R. (2006). Cellulose-based scaffold materials for cartilage tissue engineering. Biomaterials. 27, 3955-3963. [Pg.131]

Staudenmaier R. (2006). Cellulose-based scaffold materials for cartilage tissue engineering, 27, 3955-3963. [Pg.139]

S. Grad, L. Kupcsik, K. Goma, S. Gogolewski, M. AUni, The use of biodegradable polyurethane scaffolds for cartilage tissue engineering potential and limitations, Biomaterials 24 (28) (2003) 5163-5171. [Pg.140]


See other pages where Tissue engineering cartilage is mentioned: [Pg.252]    [Pg.158]    [Pg.2030]    [Pg.2325]    [Pg.1102]    [Pg.202]    [Pg.223]    [Pg.410]    [Pg.517]    [Pg.133]    [Pg.57]    [Pg.77]    [Pg.113]    [Pg.114]    [Pg.114]    [Pg.115]    [Pg.186]    [Pg.189]    [Pg.84]    [Pg.548]    [Pg.527]    [Pg.35]    [Pg.35]    [Pg.65]    [Pg.74]    [Pg.86]    [Pg.87]    [Pg.87]    [Pg.106]    [Pg.259]   
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