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Tissue-engineered biomaterial

Burdick JA, Anseth KS (2002) Photoencapsulation of osteoblasts in injectable RGD-modified PEG hydrogels for bone tissue engineering. Biomaterials 23 4315-4323... [Pg.160]

Ren, L., Tsuru, K., Hayakawa, S. and Osaka, A. (2002) Novel approach to fabricate porous gelatin-siloxane hybrids for bone tissue engineering. Biomaterials, 23, 4765—4773. [Pg.398]

Zhu J (2010) Bioactive modification of poly(ethylene glycol) hydrogels for tissue engineering. Biomaterials 31 4639-4656... [Pg.163]

Li Z, Ramay HR, Hauch KD et al (2005) Chitosan-alginate hybrid scaffolds for bone tissue engineering. Biomaterials 26 3919-3928... [Pg.163]

Daamen WF et al (2003) Preparation and evaluation of molecularly-defined collagen-elastin-glycosaminoglycan scaffolds for tissue engineering. Biomaterials 24(22) 4001-4009... [Pg.230]

Harrison BS, Atala A (2007) Carbon nanotube applications for tissue engineering. Biomaterials 28 344-353. [Pg.310]

Madihally, S. V. and Matthew, W. T. (1999). Porous chitosan scaffolds for tissue engineering. Biomaterials 20,1133-1142. [Pg.118]

Rezwan K, Chen QZ, Blaker JJ, Boccaccini AR (2006) Biodegradable and bioactive porous polymer/inorganic composite scaffolds for bone tissue engineering. Biomaterials 27(18) 3413—3431... [Pg.61]

H. Yoshimoto, Y.M. Shin, H. Terai, J.P. Vacanti. 2003. A biodegradable nanofiber scaffold by electrospinning and its potential for bone tissue engineering. Biomaterials, 24. pp. 2077. [Pg.143]

Mikos, A.G. Sarakinos, G. Leite, S.M. Vacanti, J.P. Langer, R. Laminated three-dimensional biodegradable foams for use in tissue engineering. Biomaterials 1993, 14 (5), 323. [Pg.168]

Kang, H.W. Tabata, Y. Ikada, Y. Fabrication of porous gelatin scaffolds for tissue engineering. Biomaterials 1999, 20, 1339-1344. [Pg.1356]

Li M et al (2005) Electrospun protein fibers as matrices for tissue engineering. Biomaterials 26(30) 5999-6008... [Pg.126]

Xie F et al (2006) Effect of shearing on formation of silk fibers from regenerated Bombyx mori silk fibroin aqueous solution. Int J Biol Macromol 38(3-5) 284-288 Li C et al (2006) Electrospun silk-BMP-2 scaffolds for bone tissue engineering. Biomaterials 27(16) 3115-3124... [Pg.127]

Yang F et al (2005) Electrospinning of nano/micro scale poly(L-lactic acid) aligned fibers and their potential in neural tissue engineering. Biomaterials 26(15) 2603-2610... [Pg.208]

Schmedlen RH, Masters KS. West JL 2002) Photocrosslinkable polyvinyl alcohol hydrogels that can be modified with cell adhesion peptides for use in tissue engineering. Biomaterials 23 4325-4332... [Pg.247]

Holy CE, Cheng C, Davies JE, Shoichet MS. Optimizing the sterilization of PEG A scaffolds for use in tissue engineering. Biomaterials 2001 22 25-31. Dillow AK, Dehghani F, Hrkach JS, Foster NR, Langer R. Bacterial inactivation by using near- and supercritical carbon dioxide. Proc Natl Acad Sci USA 1999 96 10344-10348. [Pg.408]

S. Deville, E. Saiz, and A.P. Tomsia, Freeze Casting of Hydroxyapatite Scaffolds for Bone Tissue Engineering, Biomaterials, 27, 5480-89 (2006). [Pg.420]

D. Silvain, S. Eduardo. P, T. Antoni, Freeze casting of hydroxyapatite Scaffolds for bone tissue engineering, Biomaterials., 27 5480-5489 (2006). [Pg.540]

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]

Crompton KE, Goud JD et al (2007) Polylysine-functionalised thermoresponsive chitosan hydrogel for neural tissue engineering. Biomaterials 28 441 149... [Pg.43]

Ma L, Gao CY, Mao ZW et al (2003) Collagen/chitosan porous scaffolds with improved biostability for skin tissue engineering. Biomaterials 24 4833-4841... [Pg.75]

Adekogbe I, Ghanem A (2005) Fabrication and characterization of DTBP-crosslinked chitosan scaffolds for skin tissue engineering. Biomaterials 26 7241-7250 Liu FI, Fan FI, Cui Y et al (2007) Effects of the controlled-released basic fibroblast growth factor from chitosan-gelatin microspheres on a chitosan-gelatin scaffold. Biomacromolecules 8 1446-1455... [Pg.76]

Jiang T, Abdel-Fattah WI, Laurencin CT (2006) In vitro evaluation of chitosan/poly(lactic acid-glycolic acid) sintered microsphere scaffolds for bone tissue engineering. Biomaterials 27 4894-4903... [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]

Rafat M, Li F, Fagerhohn P et al (2008) PEG-stabilized carbodiimide crosslinked col-lagen-chitosan hydrogels for corneal tissue engineering. Biomaterials 29 3960-3972... [Pg.78]

Di Martino A, Sittinger M, Risbud MV (2005) Chitosan a versatile biopolymer for orthopaedic tissue-engineering. Biomaterials 26(30) 5983-5990... [Pg.159]

Mooney, D. J. et al.. Stabilized polyglycolic acid fibre-based tubes for tissue engineering. Biomaterials, 17, 115, 1996. [Pg.173]

Yilgor, R Tuzlakoglu, K. Reis, R. L. Hasrrci, N. and Hasirci, V Incorporation of a sequential BMP-2/BMP-7 delivery system into chitosan-based scaffolds for bone tissue engineering. Biomaterials. 2009, 30(21), 3551-3559. [Pg.47]

Senel Ayaz, H.G., et al., 2014. Textile-templated electrospun anisotropic scaffolds for regenerative cardiac tissue engineering. Biomaterials 35, 8540—8552. [Pg.55]

Kumar, S.G., Nukavarapu, S., James, R., Nair, L.S., Laurencin, C.T., 2008. Electrospun poly(lactic acid-co-glycolic acid) scaffolds for skin tissue engineering. Biomaterials 29 (30), 4100-4107. [Pg.150]


See other pages where Tissue-engineered biomaterial is mentioned: [Pg.137]    [Pg.164]    [Pg.218]    [Pg.154]    [Pg.206]    [Pg.148]    [Pg.130]    [Pg.235]    [Pg.263]    [Pg.179]    [Pg.999]    [Pg.150]    [Pg.152]   
See also in sourсe #XX -- [ Pg.113 ]




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