Page 37 - IJB-5-1
P. 37
Additive manufacturing of bone scaffolds
porous scaffold design and fabrication. Mater Sci Eng C 87. Wang G, Shen L, Zhao J, et al., 2018, Design and compressive
Mater Biol Appl, 43: 502–505. behavior of controllable irregular porous scaffolds: Based on
73. Yang N, Zhang D T, 2015, Novel real function based method voronoi–tessellation and for additive manufacturing. Acs
to construct heterogeneous porous scaffolds and additive Biomater Sci Eng, 4(2): 719–727.
manufacturing for use in medical engineering. Med Eng 88. Tumbleston J R, Shirvanyants D, Ermoshkin N, et al.,
Phys, 37(11): 1037–1046. 2015, Continuous liquid interface production of 3D objects.
74. Yang N, Du C F, Wang S, et al., 2016, Mathematically defined Science, 347(6228): 1349–1352.
gradient porous materials. Mater Lett, 173: 136–140. 89. Xing J–F, Zheng M–Land Duan X–M, 2015, Two–photon
75. Yoo D J, 2011, Porous scaffold design using the distance field polymerization microfabrication of hydrogels: an advanced
and triply periodic minimal surface models. Biomaterials, 3D printing technology for tissue engineering and drug
32(31): 7741. delivery. Chemical Society Reviews, 44(15): 5031–5039.
76. Yoo D J, 2013, Heterogeneous porous scaffold design using 90. Yu T, Richards D J, Trusk T C, et al., 2014, 3D Printing
the continuous transformations of triply periodic minimal facilitated scaffold–free tissue unit fabrication. Biofabrication,
surface models. Int J Precis Eng Manuf, 14(10): 1743–1753. 6(2): 24111.
77. Yoo D, Kim K H, 2015, An advanced multi–morphology 91. Pourchet L J, Thepot A, Albouy M, et al., 2016, Human skin
porous scaffold design method using volumetric distance 3D bioprinting using scaffold–free approach. Adv Healthc
field and beta growth function. Int J Precis Eng Manuf, 16(9): Mater, 6(4): 1601101.
2021–2032. 92. Cervera G B, Lombera G, 1999, Numerical prediction of
78. Yang N, Zhou K G, 2015, Simple method to generate and temperature and density distributions in selective laser
fabricate stochastic porous scaffolds. Mater Sci Eng C, sintering processes. Rapid Prototyp J, 5(1): 21–26.
56: 444–450. 93. Gu D C, 2016, Effect of metallurgical defect and phase
79. Roberts A, Garboczi E J, 2001, Elastic moduli of model transition on geometric accuracy and wear resistance of iron–
random three–dimensional closed–cell cellular solids. Acta based parts fabricated by selective laser melting. J Mater Res,
Mater, 49(2): 189–197. 31(10): 1477–1490.
80. Okabe A, Boots B, Sugihara K, et al., 2001, Spatial 94. Senatov F, Niaza K, Zadorozhnyy M Y, et al., 2016,
Tessellations: Concepts and Applications of Voronoi Mechanical properties and shape memory effect of 3D–
Diagrams. New York, NY: John Wiley & Sons, Inc. printed PLA–based porous scaffolds. J Mech Behav Biomed
81. Kou X, Tan S T, 2010, A simple and effective geometric Mater, 57: 139–148.
representation for irregular porous structure modeling. 95. Jezierski A, Rennie K, Zurakowski B, et al., 2014,
Comput Aided Des, 42(10): 930–941. Neuroprotective effects of GDNF–expressing human
82. Kou X Y, Tan S T, 2012, Microstructural modelling of amniotic fluid cells. Stem Cell Rev Rep, 10(2): 251–268.
functionally graded materials using stochastic voronoi 96. Shuai C, Li Y, Feng P, et al., 2018, Positive feedback effects of
diagram and B–Spline representations. Int J Comput Integr Mg on the hydrolysis of poly–l–lactic acid (PLLA): Promoted
Manuf, 25(2): 177–188. degradation of PLLA scaffolds. Polym Test, 68: 27–33.
83. Chow H N, Tan S T, Sze W S, 2007, Layered modeling of 97. Yang L, Li J, Jin Y, et al., 2015, In vitro enzymatic degradation
porous structures with voronoi diagrams. Comput Aided Des of the cross–linked poly (ε–caprolactone) implants. Polym
Appl, 4(1–4): 321–330. Degrad Stab, 112: 10–19.
84. Fantini M, Curto M, Crescenzio F D, 2016, A method to 98. Du Y, Liu H, Yang Q, et al., 2017, Selective laser sintering
design biomimetic scaffolds for bone tissue engineering scaffold with hierarchical architecture and gradient
based on voronoi lattices. Virtual Phys Prototyp, composition for osteochondral repair in rabbits. Biomaterials,
11(2): 77–90. 137: 37.
85. Curto M F, 2017, Interactive design and manufacturing of a 99. Du Y, Liu H, Shuang J, et al., 2015, Microsphere–based
voronoi–based biomimetic bone scaffold for morphological selective laser sintering for building macroporous bone
characterization. Int J Interact Des Manuf, 6: 1–12. scaffolds with controlled microstructure and excellent
86. Gómez S, Vlad M D, López J, et al., 2016, Design and biocompatibility. Colloids Surf B Biointerfaces, 135: 81.
properties of 3D scaffolds for bone tissue engineering. Acta 100. Kumaresan T, Gandhinathan R, Ramu M, et al., 2016, Design,
Biomater, 42: 341–350. analysis and fabrication of polyamide/hydroxyapatite porous
20 International Journal of Bioprinting (2019)–Volume 5, Issue 1

