Page 80 - Development of Functional Scaffolds for Bone Tissue Engineering Using 3D-Bioprinting of Cells and Biomaterials - Yasaman Zamani
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REFERENCES
1. Brierly G, Tredinnick S, Lynham A, Woodruff M. Critical sized mandibular defect regeneration in preclinical in vivo models. Curr Mol Biol Rep 2016;2:83-89.
2. Shirani G, Abbasi AJ, Mohebbi SZ, Moharrami M. Comparison between autogenous iliac bone and freeze-dried bone allograft for repair of alveolar clefts in the presence of plasma rich in growth factors: a randomized clinical trial. J Cranio Maxill Surg 2017;45:1698-1703.
3. Berthiaume F, Maguire T J,Yarmush M L. Tissue engineering and regenerative medicine: history, progress, and challenges. Annu Rev Chem Biomol Eng 2011;2:403-430.
4. Roseti L, Parisi V, Petretta M, Cavallo C, Desando G, Bartolotti I, Grigolo B. Scaffolds for bone tissue engineering: state of the art and new perspectives. Mater Sci Eng C 2017;78:1246-1262.
5. 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.
6. Qu X, Xia P, He J, Li D. Microscale electrohydrodynamic printing of biomimetic PCL/nHA composite scaffolds for bone tissue engineering. Mater Lett 2016;185:554-557.
7. Park J, Lee SJ, Jo HH, Lee JH, Kim WD, Lee JY, Su A. Fabrication and characterization of 3D-printed bone-like β-tricalcium phosphate/polycaprolactone scaffolds for dental tissue engineering. J Ind Eng Chem 2017;46:175-181.
8. Alizadeh-Osgouei M, Li Y, Wen C. A comprehensive review of biodegradable synthetic polymer- ceramic composites and their manufacture for biomedical applications. Bioact Mater 2019;4:22-36.
9. Temple JP, Hutton DL, Hung BP, Huri PY, Cook CA, Kondragunta R, Jia X, Grayson WL. Engineering
anatomically shaped vascularized bone grafts with hASCs and 3D-printed PCL scaffolds. J Biomed
Mater Res A 2014;102:4317-4325.
10. Domingos M, Gloria A, Coelho J, Bartolo P, Ciurana J. Three-dimensional printed bone scaffolds: The
role of nano/micro-hydroxyapatite particles on the adhesion and differentiation of human mesenchymal
stem cells. Proc Inst Mech Eng H: J Eng Med 2017;231:555-564.
11. Park SA, Lee HJ, Kim KS, Lee SJ, Lee JT, Kim SY, Chang NH, Park SY. In vivo evaluation of 3D-
printed polycaprolactone scaffold implantation combined with β-TCP powder for alveolar bone
augmentation in a beagle defect model. Materials (Basel) 2018;11:238.
12. Pae HC, Kang JH, Cha JK, Lee JS, Paik JW, Jung UW, Kim BH, Choi SH. 3D-printed polycaprolactone
scaffold mixed with β-tricalcium phosphate as a bone regenerative material in rabbit calvarial defects.
J Biomed Mater Res B Appl Biomater 2019;107:1254-1263.
13. Sayyidmousavi A, Bougherara H. Investigation of stress shielding around the Stryker Omnifit and
Exeter periprosthetic hip implants using an irreversible thermodynamic-based model. J Biomed Mater Res B Appl Biomater 2012;100:1416-1424.
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