Biomedical Engineering Reference
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[42] Shear, D.A., et al., "Neural progenitor cell transplants promote long-term functional recovery
after traumatic brain injury," Brain Res , Vol. 1026, No. 1, 2004, pp. 11-22.
[43] Nakaji-Hirabayashi, T., K. Kato, and H. Iwata, "Self-assembling chimeric protein for the
construction of biodegradable hydrogels capable of interaction with integrins expressed on
neural stem/progenitor cells," Biomacromolecules , Vol. 9, No. 5, 2008, pp. 1411-1416.
[44] Dalton, P.D., and J. Mey, "Neural interactions with materials," Front Biosci , Vol. 14, No.,
2009, pp. 769-795.
[45] Itoh, S., et al., "Effects of a laminin peptide (YIGSR) immobilized on crab-tendon chitosan
tubes on nerve regeneration," J Biomed Mater Res B Appl Biomater , Vol. 73, No. 2, 2005,
pp. 375-382.
[46] Santiago, L.Y., et al., "Peptide-surface modification of poly(caprolactone) with laminin-
derived sequences for adipose-derived stem cell applications," Biomaterials , Vol. 27, No. 15,
2006, pp. 2962-2969.
[47] Gauthier, M.A., and H.A. Klok, "Peptide/protein-polymer conjugates: synthetic strategies
and design concepts," Chem Commun (Camb) , Vol. No. 23, 2008, pp. 2591-2611.
[48] Keynes, R., and G.M. Cook, "Axon guidance molecules," Cell , Vol. 83, No. 2, 1995, pp.
161-169.
[49] Rosoff, W.J., et al., "A new chemotaxis assay shows the extreme sensitivity of axons to
molecular gradients," Nat Neurosci , Vol. 7, No. 6, 2004, pp. 678-682.
[50] Adams, D.N., et al., "Growth cones turn and migrate up an immobilized gradient of the
laminin IKVAV peptide," J Neurobiol , Vol. 62, No. 1, 2005, pp. 134-147.
[51] Yao, L., et al., "The effect of laminin peptide gradient in enzymatically cross-linked collagen
scaffolds on neurite growth," J Biomed Mater Res A , Vol. No., 2009.
[52] Letourneau, P.C., "Cell-to-substratum adhesion and guidance of axonal elongation," Dev
Biol , Vol. 44, No. 1, 1975, pp. 92-101.
[53] Matsuzawa, M., et al., "Directional neurite outgrowth and axonal differentiation of
embryonic hippocampal neurons are promoted by a neurite outgrowth domain of the B2-
chain of laminin," Int J Dev Neurosci , Vol. 14, No. 3, 1996, pp. 283-295.
[54] Klein, C.L., M. Scholl, and A. Maelicke, "Neuronal networks in vitro: formation and
organization on biofunctionalized surfaces," J Mater Sci Mater Med , Vol. 10, No. 12, 1999,
pp. 721-727.
[55] Thompson, D.M., and H.M. Buettner, "Schwann cell response to micropatterned laminin
surfaces," Tissue Eng , Vol. 7, No. 3, 2001, pp. 247-265.
[56] Thompson, D.M., and H.M. Buettner, "Neurite outgrowth is directed by schwann cell
alignment in the absence of other guidance cues," Ann Biomed Eng , Vol. 34, No. 1, 2006, pp.
161-168.
[57] Weiss, L., "Cell contact phenomena," In Vitro , Vol. 5, No., 1970, pp. 48-78.
[58] Super, H., and E. Soriano, "The organization of the embryonic and early postnatal murine
hippocampus. II. Development of entorhinal, commissural, and septal connections studied
with the lipophilic tracer DiI," J Comp Neurol , Vol. 344, No. 1, 1994, pp. 101-120.
[59] Nordlander, R.H., J.W. Gazzerro, and H. Cook, "Growth cones and axon trajectories of a
sensory pathway in the amphibian spinal cord," J Comp Neurol , Vol. 307, No. 4, 1991, pp.
539-548.
[60] Clark, P., et al., "Cell guidance by ultrafine topography in vitro," J Cell Sci , Vol. 99 (Pt 1),
No., 1991, pp. 73-77.
[61] Rajnicek, A., and C. McCaig, "Guidance of CNS growth cones by substratum grooves and
ridges: effects of inhibitors of the cytoskeleton, calcium channels and signal transduction
pathways," J Cell Sci , Vol. 110 (Pt 23), No., 1997, pp. 2915-2924.
[62] Li, J., H. McNally, and R. Shi, "Enhanced neurite alignment on micro-patterned poly-L-
lactic acid films," J Biomed Mater Res A , Vol. No., 2008.
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