report
7.7.6 References
1. Nanomedicine, Nanotechnology for Health, Strategic Research Agenda, European Technology Platform, 2006
2. T. Shin'oka, Y. Imai, Y. Ikada, Transplantation of a tissue-engineered pulmonary artery. N. Engl. J. Med. 344, 7, 532-533, 2001
3. C.A. Vacanti, L.J. Bonassar, M.P. Vacanti, J. Shufflebarger, Replacement of an avulsed phalanx with tissue-engineered bone. N. Engl. J. Med. 344, 20, 1511-1514, 2001
4. H. Liu, E.B. Slamovich, T.J. Webster, Increased osteoblast functions among nanophase titania/poly(lactide-co-glycolide) composites of the highest nanometer surface roughness. J. Biomed. Mater. Res. 78, 798-807, 2006
5. T.J. Webster, L.S. Schadler, R.W. Siegel, R. Bizios, Mechanisms of enhanced osteoblast adhesion on nanophase alumina involve vitronectin. Tissue Eng. 17, 3, 291-302, 2001
6. V. Hasirci, E. Vrana, P. Zorlutuna, A. Ndreu, P. Yilgor, F.B. Basmanav, E. Aydin, Nanobiomaterials: a review of the existing science and technology, and new approaches. J. Biomater. Sci. Polym. Ed. 17, 1241-1268, 2006
7. P.X. Ma, Scaffolds for tissue fabrication, Materials Today, May 2004
8. T.J. Webster, R.W. Siegel, R. Bizios, Osteoblast adhesion on nanophase ceramics. Biomaterials 20, 13, 1221-1227, 1999
9. T.J. Webster, L.S. Schadler, R.W. Siegel, R. Bizios, Mechanisms of enhanced osteoblast adhesion on nanophase alumina involve vitronectin. Tissue Eng. 17, 3, 291-302, 2001
10. B.C. Ward, T.J. Webster, Increased functions of osteoblasts on nanophase metals. Materials Science and Engineering C 27, 3, 575-578, 2007
11. S. Faghihia, F. Azaria, A.P. Zhilyaevd, J.A. Szpunare, H. Valib, M. Tabriziana, Cellular and molecular interactions between MC3T3-E1 pre-osteoblasts and nanostructured titanium produced by high-pressure torsion. Biomaterials 28, 27, 3887-3895, 2007
12. J. Dutkiewicz, J. Kusnierz, W. Maziarz, M. Lejkowska, H. Garbacz and M. Lewandowska et al., Microstructure and mechanical properties of nanocrystalline titanium and Ti-Ta-Nb alloy manufactured using various deformation methods. Phys. Stat. Sol. A-Appl. Mat. Sci. 202, 12, 2309-2320, 2005
13. J. Duyck, I. Naert, Failure of oral implants: aetiology, symptoms and influencing factors. Clin. Oral Invest. 2, 3, 102-114, 1998
14. P. Li, Biomimetic nano-apatite coating capable of promoting bone ingrowth. J. Biomed. Mater. Res. 3, 66, 79-85, 2003
15. Liu, H. and Webster, T.J., Nanomedicine for implants: a review of studies and necessary experimental tools. Biomaterials 28, 354-369, 2007
16. C. Milburn, J. Chen, Y. Cao, G.M. Oparinde, M.O. Adeoye, A. Beye, W.O. Soboyejo, Investigation of effects of argenine-glycine-aspartate (RGD) and nano-scale titanium coatings on cell spreading and adhesion, Materials Science & Engineering C, 2008 doi: 10.1016/j.msec.2008.07.003
17. E.D. Spoerke, S.I. Stupp, Colonization of organoapatite- titanium mesh by preosteoblastic cells. J. Biomed. Mater. Res. A 67, 960-969, 2003
18. E.S. Gil, S.M. Hudson, Stimuli responsive polymers and their conjugates. Prog. Polym. Sci. 29, 1173-1222, 2004
19. K.A. Athanasiou, G.G. Niederauer, C.M. Agrawal, Sterilization, toxicity, biocompatibility and clinical applications of polylactic acid/polyglycolic acid copolymers. Biomaterials 17, 2, 93-102, 1996
20. R.L. Price, K.L. Elias, K.M. Haberstroh, T.J. Webster, Small diameter, high surface energy carbon nanofiber formulations that selectively increase osteoblast function. Materials Research Society Symposium Proceedings, 711, 261-264, 2002
21. S. Kay, A. Thapa, K.M. Haberstroh, T.J. Webster, Nanostructured polymer/nanophase ceramic composites enhance osteoblast and chondrocyte adhesion. Tissue Eng. 8, 5, 753-756, 2002
22. G. Wei, P.X. Ma, Structure and properties of nano-hydroxyapatite/ polymer composite scaffolds for bone tissue engineering. Biomaterials 25, 4749-4757, 2004
23. E. Nejati, V. Firouzdor, Synthesis and characterization of needle-like nano hydroxyapatite/poly(L-lactide acid) composite scaffold for bone tissue engineering. Materials Science & Engineering C 2008 doi:10.1016/j.msec.2008.07.038
24. J.B. Lee, S.H. Lee, S. Mi Yu, J.-C. Park, J.B. Choic, J.K. Ki, PLGA scaffold incorporated with hydroxyapatite for cartilage regeneration. Surface and Coatings Technology 202, 5757-5761, 2008
25. C.P. Barnes, S.A. Sell, E.D. Boland, D.G. Simpson, G.L. Bowlin, Nanofiber technology: Designing the next generation of tissue engineering scaffolds. Advanced Drug Delivery Reviews 59, 1413-1433, 2007
26. R. Murugan, S. Ramakrishna, Design strategies of tissue engineering scaffolds with controlled fiber orientation. Tissue Eng. 13, 845-1866, 2007
27. J.D. Hartgerink, E. Beniash, S.I. Stupp, Self-assembly and mineralization of peptide-amphiphile nanofibers. Science 294, 1684-1688, 2001
28. J. Kisiday, M. Jin, B. Kurz, H. Hung, C. Semino, S. Zhang, A.J. Grodzinsky, Self-assembling peptide hydrogel fosters chondrocyte extracellular matrix production and cell division: Implications for cartilage tissue repair. Proc. Natl. Acad. Sci. USA 99, 9996-10001, 2002
29. X. Zhaoa, F. Pana, J.R. Lu, Recent development of peptide self-assembly. Progress in Natural Science 18, 6, 653-660, 2008
30. C.P. Barnes, S.A. Sell, E.D. Boland, D.G. Simpson, G.L. Bowlin, Nanofiber technology: Designing the next generation of tissue engineering scaffolds. Advanced Drug Delivery Reviews 59, 1413-1433, 2007
31. Z. Ma, M. Kotaki, R. Inai, S. Ramakrishna, Potential of nanofiber matrix as tissue-engineering scaffolds. Tissue Eng. 11, 101-109, 2005
32. L.A. Smith, P.X. Ma, Nano-fibrous scaffolds for tissue engineering. Colloids and Surfaces. B, Biointerfaces 39, 125-131, 2004
33. M. Bognitzki, W. Czado, T. Frese, A. Schaper, M. Hellwig, M. Steinhart, A. Greiner, J. H. Wendorff, Nanostructured fibers via electrospinning. Advanced Materials 13, 70-72, 2001
34. J.J. Stankus, J. Guan, K. Fujimoto, W.R. Wagner Microintegrating smooth muscle cells into a biodegradable, elastomeric fiber matrix. Biomaterials 27, 735-744, 2006
35. E.D. Boland, et al., Electrospinning of bioresorbable polymers for tissue engineering scaffolds, in: D.H. Reneker, H. Fong (Eds.), Polymeric Nanofibers, Oxford University Press, New York, 188-204, 2006
36. W.H. Wong, D.J. Mooney, Synthesis and properties of biodegradable polymers used as synthetic matrices for tissue engineering, in: A. Atala, et al., (Eds.), Synthetic Biodegradable Polymer Scaffold, Birhauser, Boston, 50-82, 1997
37. F. Yang, R. Murugan, S. Ramakrishna, X. Wang, Y. -X. Mac, S. Wang, Fabrication of nano-structured porous PLLA scaffold intended for nerve tissue engineering. Biomaterials 25, 10, 1891-1900, 2004
38. X. Zong, H. Bien, C.-Y. Chung, L. Yin, D. Fang, B.S. Hsiao, B. Chua, E. Entcheva, Electrospun fine-textured scaffolds for heart tissue constructs. Biomaterials 26, 26, 5330-5338, 2005
39. W.-J. Li, C.T. Laurencin, E.J. Caterson, R.S. Tuan, F.K. Ko, Electrospun nanofibrous structure: a novel scaffold for tissue engineering. J. Biomed. Mater. Res. 60, 613-621, 2002
40. E. Boland, B. Coleman, C. Barnes, D. Simpson, G. Wnek, G. Bowlin, Electrospinning polydioxanone for biomedical applications. Acta Biomaterialia 1, 115-123, 2005
41. M.J. Smith, M.J. McClure, S.A. Sell, C.P. Barnes, B.H. Walpoth, D.G. Simpson, G.L. Bowlin, Suture-reinforced electrospun polydioxanone-elastin small-diameter tubes for use in vascular tissue engineering: A feasibility study. Acta Biomaterialia 4,1, 58-66, 2008
42. H. Yoshimoto, Y.M. Shin, H. Terai, J.P. Vacanti, A biodegradable nanofiber scaffold by electrospinning and its potential for bone tissue engineering. Biomaterials 24, 2077-2082, 2003
43. M. Shin, O. Ishii, T. Sueda, J.P. Vacanti, Contractile cardiac grafts using a novel nanofibrous mesh. Biomaterials 25, 3717-3723, 2004
44. I. Keun Kwon, S. Kidoaki, T. Matsuda, Electrospun nano- to microfiber fabrics made of biodegradable copolyesters: structural characteristics mechanical properties and cell adhesion potential. Biomaterials 26, 3929-3939, 2005
45. A. Sell, M.J. McClure, C.P. Barnes, D.C. Knapp, B.H. Walpoth, D.G. Simpson, G.L. Bowlin, Electrospun polydioxanone-elastin blends: potential for bioresorbable vascular grafts. Biomedical Materials: Materials for Tissue Engineering and Regenerative Medicine 1, 72-80, 2006
46. L. Huang, R.A. McMillan, R.P. Apkarian, B. Pourdeyhimi, V.P. Conticello, E.L. Chaikof, Generation of synthetic elastin-mimetic small diameter fibers and fiber networks. Macromolecules 33, 2989-2997, 2000
47. M.C. McManus, E.D. Boland, G.L. Bowlin, D.G. Simpson, P.G. Espy, H.P. Koo, Electrospun fibrinogen nanofiber matrix for urologic tissue engineering. Journal of Urology 171, 4, 457-457, 2004
48. C.P. Barnes, S.A. Sell, E.D. Boland, D.G. Simpson, G.L. Bowlin, Nanofiber technology: Designing the next generation of tissue engineering scaffolds. Advanced Drug Delivery Reviews 59, 1413-1433, 2007
49. J.A. Matthews, G.E. Wnek, D.G. Simpson, G.L. Bowlin, Electrospinning of collagen nanofibers. Biomacromolecules 3, 2, 232-238, 2002
50. Y.R.V. Shih, C.N. Chen, S.W. Tsai, Y.J. Wang, O.K. Lee, Growth of mesenchymal stem cells on electrospun type I collagen nanofibers. Stem Cells 24, 2391-2397, 2006
51. M. Li , M.J. Mondrinos, M.R. Gandhi, F.K. Ko, A.S. Weiss, P.I. Lelkes, Electrospun protein fibers as matrices for tissue engineering. Biomaterials 26, 5999-6008, 2005
52. L. Huang, K. Nagapudi, R.P. Apkarian, E.L. Chaikof, Engineered collagen: PEO nanofibers and fabrics. Polymer Ed. 12, 979-993, 2001
53. E.D. Boland, J.A. Matthews, K.J. Pawlowski, D.G. Simpson, G.E. Wnek, G.L. Bowlin, Electrospinning collagen and elastin: preliminary vascular tissue engineering. Frontiers in Bioscience 9, 1422-1432, 2004
54. W.A. Comisar, N.H. Kazmers, D.J. Mooney, J.J. Linderman, Engineering RGD nanopatterned hydrogels to control preosteoblast behavior: a combined computational and experimental approach. Biomaterials 28, 4409-4417, 2007
55. N. Alobaid, H.J. Salacinski, K.M. Sales, B. Ramesh, R.Y. Kannan, G. Hamilton, A.M Seifalian, Nanocomposite containing bioactive peptides promote endothelialisation by circulating progenitor cells: an in vitro evaluation. Eur. J. Vasc. Endovasc. Surg. 32, 76-83, 2006
56. M. Pereira, R.I. Sharma, R. Penkala, T.A. Gentzel, J.E. Schwarzbauer, P.V. Moghe, Engineered cell-adhesive nanoparticles nucleate extracellular matrix assembly. Tissue Eng. 13, 3, 567-578, 2007
57. J.I. Rotmans, J.M.M. Heyligers, H.J.M. Verhagen, E. Velema, M.M. Nagtegaal, D.P.V. de Kleijn, F.G. de Groot, E.S.G. Stroes, G. Pasterkamp, In vivo cell seeding with anti-CD34 antibodies successfully accelerates endothelialization but stimulates intimal hyperplasia in porcine arteriovenous expanded polytetrafluoroethylene grafts. Circulation 112, 12-18, 2005
58. A. Ito, H. Honda, M. Kamihira, Construction of 3D tissue-like structure using functional magnetite nanoparticles. Yakugaku zasshi Ito 128, 1, 21-28, 2008
59. J.W.M. Bulte, T. Douglas, B. Witwer, S.-C. Zhang, E. Strable, B.K. Lewis, H. Zywicke, B. Miller, P. van Gelderen, B.M. Moskowitz, I.D. Duncan, J.A. Frank, Magnetodendrimers allow endosomal magnetic labelling and in vivo tracking of stem cells. Nature Biotechnology 19, 1141-1147, 2001
60. T. Sasaki, N. Iwasaki, K. Kohno, M. Kishimoto, T. Majima, S. Nishimura, A. Minami, Magnetic nanoparticles for improving cell invasion in tissue engineering. J. Biomed. Mater. Res. A 86, 4, 969-978, 2008
61. H. Perea, J. Aigner, U. Hopfner, E. Wintermantel, Direct magnetic tubular cell seeding: A novel approach for vascular tissue engineering. Cells Tissues Organs 183, 156-165, 2006
62. A. Heymer, D. Haddad, M. Weber, U. Gbureck, P.M. Jakob, J. Eulert, U. Noth, Iron oxide labelling of human mesenchymal stem cells in collagen hydrogels for articular cartilage repair. Biomaterials 29, 10, 1473-1483, 2008
63. B.S. Harrison, A. Atala, Carbon nanotube applications for tissue engineering. Biomaterials 28, 344-353, 2007
64. D.A. Heller, S. Baik, T.E. Eurell, M.S. Strano, Single-walled carbon nanotube spectroscopy in live cells: towards long-term labels and optical sensors. Adv. Mater. 17, 2793-2799, 2005
65. R.A. MacDonald, B.F. Laurenzi, G. Viswanathan, P.M. Ajayan, J.P. Stegemann, Collagen-carbon nanotube composite materials as scaffolds in tissue engineering. J. Biomed. Mater. Res. 74A, 489-96, 2005
66. B. Sitharaman, X. Shi, X.F. Walboomers, H. Liao, V. Cuijpers, L.J. Wilson, A.G. Mikosa, J.A. Jansen, In vivo biocompatibility of ultra-short single-walled carbon nanotube/biodegradable polymer nanocomposites for bone tissue engineering. Bone 43, 2, 362-370, 2008
67. S.-F. Wang, L. Shen, W.-D. Zhang, Y.-J. Tong, Preparation and mechanical properties of chitosan/carbon nanotubes composites. Biomacromolecules 6, 6, 3067-3072, 2005
68. M. Kawaguchi, T. Fukushima, T. Hayakawa, N. Nakashima, Y. Inoue, S. Takeda, K. Okamura, K. Taniguchi, Preparation of carbon nanotube-alginate nanocomposite gel for tissue engineering. Dental Materials Journal 25, 4, 719-725, 2006
69. H. Hu, Y. Ni, S.K. Mandal, V. Montana, B. Zhao, R.C. Haddon, V. Parpura, Polyethyleneimine functionalized single-walled carbon nanotubes as a substrate for neuronal growth. J. Phys. Chem. B 109, 10, 4285-4289, 2005
70. P. Galvan-Garcia, E.W. Keefer, F. Yang, M. Zhang, S. Fang, A.A. Zakhidov, R.H. Baughman, M.I. Romero, Robust cell migration and neuronal growth on pristine carbon nanotube sheets and yarns. Journal of Biomaterials Science. Polymer edition 18, 10, 1245-1261, 2007
71. R.A. Dubin, G.C. Callegari, J. Kohn, A.V. Neimark, Carbon nanotube fibers are compatible with mammalian cells and neurons. NanoBioscience, IEEE Transactions on Nanobioscience 7, 1, 11-14, 2008
72. E.W. Keefer, B.R. Botterman, M.I. Romero, A.F. Rossi, G.W. Gross, Carbon nanotube coating improves neuronal recordings. Nature Nanotechnology 3, 7, 434-443, 2008
73. A. Kushida, M. Yamato, C. Konno, A. Kikuchi, Y. Sakurai, T. Okano, Decrease in culture temperature releases monolayer endothelial cell sheets together with deposited fibronectin matrix from temperature-responsive culture surfaces. J. Biomed. Mater. Res. 45, 4, 355-362, 1999
74. J. Yanga, M. Yamatoa, T. Shimizua, H. Sekinea, K. Ohashia, M. Kanzakib, T. Ohkic, K. Nishidad, T. Okano, Reconstruction of functional tissues with cell sheet engineering. Biomaterials 28, 5033-5043, 2007
75. M.J. Dalby, N. Gadegaard, R. Tare, A. Andar, M.O. Riehle, P. Herzyk, C.D.W. Wilkinson, R.O.C. Oreffo, The control of human mesenchymal cell differentiation using nanoscale symmetry and disorder. Nature Materials 6, 997-1003, 2007
76. E.K.F. Yim, S.W. Pang, K.W. Leong, Synthetic nanostructures inducing differentiation of human mesenchymal stem cells into neuronal lineage. Experimental Cell Research 313, 1820-1829, 2007
77. L. Ferreira, J.M. Karp, L. Nobre, R. Langer, New opportunities: The use of nanotechnologies to manipulate and track stem cells. Cell Stem Cell 3, 136-146, 2008
78. A. Prokop, Z. Prokop, D. Schaffer, E. Kozlov, J. Wikswo, D. Cliffel, F. Baudenbacher, NanoLiterBioReactor: Long-Term Mammalian Cell Culture at Nanofabricated Scale. Biomedical Microdevices 6, 4, 325-339, 2004
79. K. Viravaidya, M.L. Shuler, Incorporation of 3T3-L1 cells to mimic bioaccumulation in a microscale cell culture analog device for toxicity studies. Biotechnol. Prog. 20, 590-597, 2004
80. R. Baudoin, A. Corlu, L. Griscom, C. Legallais, E. Leclerc, Trends in the development of microfluidic cell biochips for in vitro hepatotoxicity. Toxicology in Vitro 21, 535-544, 2007
81. P. Soon-Shiong, M. Otterlie, G. Skjak-Braek, O. Smidsrod, R. Heintz, R.P. Lanza, T. Espevik, An immunologic basis for the fibrotic reaction to implanted microcapsules. Transplant Proc. 23 (1 Pt 1), 758-759, 1991
82. U. Siebers, A. Horcher, H. Brandhorst, D. Brandhorst, B. Hering, K. Federlin, R.G. Bretzel, T. Zekorn, Analysis of the cellular reaction towards microencapsulated xenogeneic islets after intraperitoneal transplantation. J. Mol. Med. 77, 1, 215-218, 1999
83. T.A. Desai, D.J. Hansford, M. Ferrari, Microfabricated interfaces: new approaches in tissue engineering and biomolecular separation. Biomol. Eng. 17, 1, 23-36, 2000
84. T.A. Desai, T. West, M. Cohen, T. Boiarski, A. Rampersaud, Nanoporous microsystems for islet cell replacement. Advanced Drug Delivery Reviews 56,1661-1673, 2004
85. T.A. Desai, J. Tu, G. Rasi, P. Borboni, M. Ferrari, Microfabricated biocapsules provide short-term immunoisolation of insulinoma xenografts. Biomed. Microdevices 1, 2, 1999
86. P.R. Supronowicz, P.M. Ajayan, K.R. Ullmann, B.P. Arulanandam, D.W. Metzger, R. Bizios, Novel current-conducting composite substrates for exposing osteoblasts to alternating current stimulation. J. Biomed. Mater. Res. 59, 499-506, 2002
Document details:
Visits: 16, Published on: November, 25th 2008, 12:23 PM, Last edit: 2009-06-01 17:57:21 Size: 17 KByte



