Biomedical Engineering Reference
In-Depth Information
38. H. Waldeck, A. Chung, W. Kao. Interpenetrating polymer networks containing gelatin
modified with PEGylated RGD and soluble KGF: Synthesis, characterization, and application
in in vivo critical dermal wound. J Biomed Mater Res , vol. 82, pp. 861-871, 2007.
39. J. Li, F. Wang, L. Zhou, J. Cui, “Application of gelatin tube in bridge repair of sciatic nerve
defect.” Zhongguo Linchuang Kangfu , vol. 9, pp. 158-159, 2005.
40. B. Wu, Z. Luo, H. Meng, H. Hu, Y. Zhang, M. Li, “Preparation of crosslinked collagen-
gelatin biomaterial and experiment of its cytotoxicity.” Shengwu Yixue Gongcheng Yu
Linchuang , vol. 11, pp. 420-425, 2007.
41. S.P. Massia and J.A. Hubbell, “An RGD spacing of 440 nm is sufficient for integrin
alphaVbeta3 mediated fibroblast spreading and 140 nm for focal contact and stress fiber
formation.” J Cell Biol , vol. 14, pp. 1089-1100, 1991.
42. D. Yahalom, A. Wittelsberger, D.F. Mierke, M. Rosenblatt, J.M. Alexander, M. Chorey,
“Identification of the principal binding site for RGD-containing ligand in the alphaVbeta3
integrin: a photoaffinity cross-linking study.” Biochem , vol. 41, pp. 8321-8331, 2002.
43. A.K. McNally and J.M. Anderson, “Beta1 and beta2 integrins mediate adhesion during
macrophage fusion and multinucleated foreign body giant cell formation.” Am J Path , vol.
160, pp. 621-630, 2002.
44. J.A. Rowley and D.J. Mooney, “Alginate type and RGD density control myoblast
phenotype,” J Biomed Mater Res , vol. 60, pp. 217-223, 2001.
45. A.A. Sawyer, K.M. Hennessy, S.L. Bellis, “The effect of adsorbed serum proteins, RGD and
proteoglycan-binding peptides on the adhesion of mesenchymal stem cells to hydroxyapatite.”
Biomaterials , vol. 28, pp. 383-392, 2007.
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