Page 31 - IJB-4-1
P. 31
Fan Liu, et al.
samples for bone tissue engineering. Plos One, 9(9): with a defined macro-architecture by rapid prototyping for
e108252. https://doi.org/10.1371/journal.pone.0108252 bone-tissue-engineering research. J Biomed Mater Res A,
77. Yan Y, Cui F, Zhang R,et al., 2000, Rapid prototyping 68(1): 123–132. https://doi.org/10.1002/jbm.a.20015
manufacturing for artificial human bone. Materials Review 90. Daly A C, Cunniffe G M, Sathy B N, et al., 2016, 3D Bioprinting
(Chinese), 14: 11–13. of developmentally inspired templates for whole bone organ
78. Park A, Wu B, Griffith L G, 1998, Integration of surface engineering. Advanced Healthcare Materials, 5(18): 2353–
modification and 3D fabrication techniques to prepare 2362. https://doi.org/10.1002/adhm.201600182
patterned poly (L-lactide) substrates allowing regionally 91. La W G, Jang J, Kim B S, et al., 2016, Systemically replicated
selective cell adhesion. J Biomater Sci Polym Ed, 9(2):89– organic and inorganic bony microenvironment for new bone
110. formation generated by a 3D printing technology. RSC Advances,
79. Limpanuphap S, Derby B, 2002, Manufacture of biomaterials by 6(14): 11546–11553. https://doi.org/10.1039/C5RA20218C
a novel printing process. J Mater Sci Mater Med, 13(12):1163–6. 92. Hutmacher D W, 2000, Scaffolds in tissue engineering bone
80. Lam C X F, Mo X M, Teoh S H, et al., 2002, Scaffold and cartilage. Biomaterials, 21(24): 2529–2543. https://doi.
development using 3D printing with a starch-based polymer. org/10.1016/S0142-9612(00)00121-6
Mater Sci Eng C, 20(1): 49–56. https://doi.org/10.1016/ 93. Williams J M, Adewunmi A, Schek R M, et al., 2005, Bone
S0928-4931(02)00012-7 tissue engineering using polycaprolactone scaffolds fabricated
81. He K, Wang X, Kumta S, et al., 2009, Fabrication of a via selective laser sintering. Biomaterials, 26(23): 4817–
two-level tumor bone repair biomaterial based on a rapid 4827. https://doi.org/10.1016/j.biomaterials.2004.11.057
prototyping technique. Biofabrication, 1(2): 025003. https:// 94. Tan K, Chua C, Leong K, et al., 2003, Scaffold development
doi.org/10.1088/1758–5082/1/2/025003 using selective laser sintering of polyetheretherketone-
82. Yu J, Wen T, Hu Q X, 2010, Research on automatic planning hydroxyapatite biocomposite blends. Biomaterials, 24(18):
of main clamping points in rapid fixture design system. 3115–3123.
Conference: Fuzzy Systems and Knowledge Discovery, 6: 95. Mondrinos M J, Dembzynski R, Lu L, et al., 2006, Porogen-
2657–2661. https://doi.org/10.1109/FSKD.2010.5569803 based solid freeform fabrication of polycaprolactone-
83. Hollister S J, 2005, Porous scaffold design for tissue calcium phosphate scaffolds for tissue engineering.
engineering. Nat Mater, 4(7): 518–524. https://doi. Biomaterials, 27(25): 4399–4408. https://doi.org/10.1016/
org/10.1038/nmat1421 j.biomaterials.2006.03.049
84. Bose S, Vahabzadeh S, Bandyopadhyay A, 2013, Bone tissue 96. Jakus A E, Rutz A L, Jordan S W, et al., 2016, Hyperelastic
engineering using 3D printing. Materials Today, 16(12): 496– “bone”: A highly versatile, growth factor-free, osteoregenerative,
504. scalable, and surgically friendly biomaterial. Sci Transl Med,
85. Fedorovich N E, Alblas J, Hennink W E, et al., 2011, Organ 8(358): 358ra127. https://doi.org/10.1126/scitranslmed.
printing: The future of bone regeneration? Trends Biotechnol. aaf7704
29(12): 601–606. https://doi.org/10.1016/j.tibtech.2011.07.001 97. Wang X, He K, Zhang W, 2013, Optimizing the fabrication
86. Inzana J A, Olvera D, Fuller S M, et al., 2014, 3D printing of processes for manufacturing a hybrid hierarchical polyurethane-
composite calcium phosphate and collagen scaffolds for bone cell/hydrogel construct. J Bioact Compat Polym, 28(4): 303–
regeneration. Biomaterials, 35(13): 4026–4034. https://doi. 319. https://doi.org/10.1177/0883911513491359
org/10.1016/j.biomaterials.2014.01.064 98. Huang Y, He K, Wang X, 2013, Rapid Prototyping of a
87. Xue W, Krishna B V, Bandyopadhyay A, et al., 2007, Processing hybrid hierarchical polyurethane-cell/hydrogel construct for
and biocompatibility evaluation of laser processed porous regenerative medicine. Mater Sci Eng C, 33(6): 3220–3229.
titanium. Acta Biomater, 3(6): 1007–1018. https://doi. https://doi.org/10.1016/j.msec.2013.03.048
org/10.1016/j.actbio.2007.05.009 99. Wang J, Wang X, 2014, Development of a combined 3D
88. Hull C W, 1986, Apparatus for production of three-dimensional printer and its application in complex organ construction,
objects by stereolithography, US Patent 4575330, fabbster. Master’s Thesis, Tsinghua University, Beijing, China.
com. 100. Huang H, Oizumi S, Kojima N, et al., 2007, Avidin-
89. Wilson C E, de Bruijn J D, van Blitterswijk C A, et al., 2004, biotin binding-based cell seeding and perfusion culture
Design and fabrication of standardized hydroxyapatite scaffolds of liver-derived cells in a porous scaffold with a three-
International Journal of Bioprinting (2018)–Volume 4, Issue 1 13

