Page 102 - Development of Functional Scaffolds for Bone Tissue Engineering Using 3D-Bioprinting of Cells and Biomaterials - Yasaman Zamani
P. 102

REFERENCES
1. Chiarello E, Cadossi M, Tedesco G, Capra P, Calamelli C, Shehu A, Giannini S. Autograft, allograft and bone substitutes in reconstructive orthopedic surgery. Aging Clin Exp Res 2013;25:101-103.
2. Yu NY, Schindeler A, Little DG, Ruys AJ. Biodegradable poly (α-hydroxy acid) polymer scaffolds for bone tissue engineering. J Biomed Mater Res B 2010;93:285-295.
3. Felfel R, Poocza L, Gimeno-Fabra M, Milde T, Hildebrand G, Ahmed I, Scotchford C, Sottile V, Grant DM, Liefeith K. In vitro degradation and mechanical properties of PLA-PCL copolymer unit cell scaffolds generated by two-photon polymerization. Biomed Mater 2016;11:015011.
4. Li Y, Liao C, Tjong SC. Synthetic biodegradable aliphatic polyester nanocomposites reinforced with nanohydroxyapatite and/or graphene oxide for bone tissue engineering applications. Nanomaterials 2019;9:590.
5. Arul KT, Manikandan E, Ladchumananandasivam R. Polymer-based calcium phosphate scaffolds for tissue engineering applications. In: Grumezescu, A.M. (ed) Nanoarchitectonics in Biomedicine, William Andrew Publishing 2019:585-618.
6. Ramesh N, Moratti SC, Dias GJ. Hydroxyapatite-polymer biocomposites for bone regeneration: a review of current trends. J Biomed Mater Res B Appl Biomater 2018;106:2046-2057.
7. Yoshida T, Miyaji H, Otani K, Inoue K, Nakane K, Nishimura H, Ibara A, Shimada A, Ogawa K, Nishida E, Sugaya T, Sun L, Fugetsu B, Kawanami M. Bone augmentation using a highly porous PLGA/β-TCP scaffold containing fibroblast growth factor-2. J Periodontal Res 2015;50:265-273.
8. Lee SK, Han CM, Park W, Kim IH, Joung YK, Han DK. Synergistically enhanced osteoconductivity and anti-inflammation of PLGA/β-TCP/Mg(OH)2 composite for orthopedic applications. Mater Sci Eng C Mater Biol Appl 2019;94:65-75.
9. Turnbull G, Clarke J, Picard F, Riches P, Jia L, Han F, Li B, Shu W. 3D bioactive composite scaffolds for bone tissue engineering. Bioact Mater 2018;3:278-314.
10. Henkel J, Woodruff MA, Epari DR, Steck R, Glatt V, Dickinson IC, Choong PF, Schuetz MA, Hutmacher DW. Bone regeneration based on tissue engineering conceptions - a 21st century perspective. Bone Res 2013;1:216-248.
11. Geven MA, Grijpma DW. Additive manufacturing of composite structures for the restoration of bone tissue. Multifunc Mater 2019;2:024003.
12. Radenkovic D, Solouk A, Seifalian A. Personalized development of organs using 3D printing technology. Med Hypotheses 2016;87:30-33.
13. Endres S, Hiebl B, Hägele J, Beltzer C, Fuhrmann R, Jäger V, Almeida M, Costa E, Santos C, Traupe H, Jung EM. Angiogenesis and healing with non-shrinking, fast degradeable PLGA/CaP scaffolds in critical-sized defects in the rabbit femur with or without osteogenically induced mesenchymal stem cells. Clin Hemorheol Microcirc 2011;48:29-40.
100




















































































   100   101   102   103   104