Biomedical Engineering Reference
In-Depth Information
47. Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2006) Osteogenic differ-
entiation of mesenchymal stem cells in self-assembled peptide-amphiphile nanofibers.
Biomaterials 27(22):4079-4086
48. Iwashina T, Mochida J, Miyazaki T, Watanabe T, Iwabuchi S, Ando K et al (2006) Low-
intensity pulsed ultrasound stimulates cell proliferation and proteoglycan production in rabbit
intervertebral disc cells cultured in alginate. Biomaterials 27(3):354-361
49. Kisiday J, Jin M, Kurz B, Hung H, Semino C, Zhang S et al (2002) Self-assembling peptide
hydrogel fosters chondrocyte extracellular matrix production and cell division: implications
for cartilage tissue repair. Proc Natl Acad Sci USA 99(15):9996-10001
50. Klein TJ, Rizzi SC, Reichert JC, Georgi N, Malda J, Schuurman W et al (2009) Strategies for
zonal cartilage repair using hydrogels. Macromol Biosci 9(11):1049-1058
51. Passaretti D, Silverman RP, Huang W, Kirchhoff CH, Ashiku S, Randolph MA et al (2001)
Cultured chondrocytes produce injectable tissue-engineered cartilage in hydrogel polymer.
Tissue Eng 7(6):805-815
52. Peretti GM, Xu JW, Bonassar LJ, Kirchhoff CH, Yaremchuk MJ, Randolph MA (2006)
Review of injectable cartilage engineering using fibrin gel in mice and swine models. Tissue
Eng 12(5):1151-1168
53. Roughley P, Hoemann C, DesRosiers E, Mwale F, Antoniou J, Alini M (2006) The potential
of chitosan-based gels containing intervertebral disc cells for nucleus pulposus supplementa-
tion. Biomaterials 27(3):388-396
54. Stern S, Lindenhayn K, Schultz O, Perka C (2000) Cultivation of porcine cells from the
nucleus pulposus in a fibrin/hyaluronic acid matrix. Acta Orthop Scand 71(5):496-502
55. Trivedi N, Keegan M, Steil GM, Hollister-Lock J, Hasenkamp WM, Colton CK et al (2001)
Islets in alginate macrobeads reverse diabetes despite minimal acute insulin secretory
responses. Transplantation 71(2):203-211
56. Wong M, Siegrist M, Gaschen V, Park Y, Graber W, Studer D (2002) Collagen fibrillogenesis
by chondrocytes in alginate. Tissue Eng 8(6):979-987
57. Bettinger CJ, Weinberg EJ, Kulig KM, Vacanti JP, Wang YD, Borenstein JT et al (2006)
Three-dimensional microfluidic tissue-engineering scaffolds using a flexible biodegradable
polymer. Adv Mater 18(2):165-169
58. Anseth KS, Metters AT, Bryant SJ, Martens PJ, Elisseeff JH, Bowman CN (2002) In situ
forming degradable networks and their application in tissue engineering and drug delivery.
J Control Release 78(1-3):199-209
59. Bryant SJ, Cuy JL, Hauch KD, Ratner BD (2007) Photo-patterning of porous hydrogels for
tissue engineering. Biomaterials 28(19):2978-2986
60. Causa F, Netti PA, Ambrosio L (2007) A multi-functional scaffold for tissue regeneration: the
need to engineer a tissue analogue. Biomaterials 28(34):5093-5099
61. Chang CH, Liu HC, Lin CC, Chou CH, Lin FH (2003) Gelatin-chondroitin-hyaluronan tri-
copolymer scaffold for cartilage tissue engineering. Biomaterials 24(26):4853-4858
62. Dang JM, Sun DDN, Shin-Ya Y, Sieber AN, Kostuik JP, Leong KW (2006) Temperature-
responsive hydroxybutyl chitosan for the culture of mesenchymal stem cells and interverte-
bral disk cells. Biomaterials 27(3):406-418
63. Lawson MA, Barralet JE, Wang L, Shelton RM, Triffitt JT (2004) Adhesion and growth of
bone marrow stromal cells on modified alginate hydrogels. Tissue Eng 10(9-10):1480-1491
64. Lee J, Cuddihy MJ, Kotov NA (2008) Three-dimensional cell culture matrices: state of the
art. Tissue Eng Part B Rev 14(1):61-86
65. Lee KY, Mooney DJ (2001) Hydrogels for tissue engineering. Chem Rev 101(7):1869-1879
66. Lutolf MR, Weber FE, Schmoekel HG, Schense JC, Kohler T, Muller R et al (2003) Repair
of bone defects using synthetic mimetics of collagenous extracellular matrices. Nat Biotechnol
21(5):513-518
67. Molinaro G, Leroux JC, Damas J, Adam A (2002) Biocompatibility of thermosensitive chi-
tosan-based hydrogels: an in vivo experimental approach to injectable biomaterials.
Biomaterials 23(13):2717-2722
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