139
37. Murphy, S. V., & Atala, A. (2014). 3D bioprinting of tissues and organs. Nature Biotechnology,
32(8), 773–785.
38. Nakamura, M., Nishiyama, Y., & Henmi, C. 2008. 3D micro-fabrication by inkjet 3D biofabrication for 3D tissue engineering. In 2008 International Symposium on Micro-Nano
Mechatronics and Human Science.
39. Nishiyama, Y., et al. (2008). Ink jet three-dimensional digital fabrication for biological tissue manufacturing: Analysis of alginate microgel beads produced by ink jet droplets for
three dimensional tissue fabrication. Journal of Imaging Science and Technology, 52(6),
60201-1–60201-6.
40. Nishiyama, Y., et al. (2008). Development of a three-dimensional bioprinter: construction of
cell supporting structures using hydrogel and state-of-the-art inkjet technology. Journal of
Biomechanical Engineering, 131(3), 035001–035001-6.
41. Norotte, C., et al. (2009). Scaffold-free vascular tissue engineering using bioprinting.
Biomaterials, 30(30), 5910–5917.
42. Ozbolat, I. T. (2015). Scaffold-based or scaffold-free bioprinting: Competing or complementing approaches? Journal of Nanotechnology in Engineering and Medicine, 6(2),
024701–024701-6.
43. Ozbolat, I. T. (2017). 3D bioprinting: Fundamentals, principles and applications. New York:
Elsevier.
44. Ozbolat, I. T., Moncal, K. K., & Gudapati, H. (2017). Evaluation of bioprinter technologies.
Additive Manufacturing, 13(Suppl C), 179–200.
45. Poldervaart, M. T., et al. (2013). Sustained release of BMP-2 in bioprinted alginate for osteogenicity in mice and rats. PLoS One, 8(8), e72610.
46. Richards, D., et al. (2017). 3D bioprinting for vascularized tissue fabrication. Annals of
Biomedical Engineering, 45(1), 132–147.
47. Siallagan, D., et al. (2017). Virtual surgical planning, flow simulation, and 3-dimensional
electrospinning of patient-specific grafts to optimize Fontan hemodynamics. The Journal of
Thoracic and Cardiovascular Surgery, 155(4), 1734–1742.
48. Tan, Y., et al. (2014). 3D printing facilitated scaffold-free tissue unit fabrication. Biofabrication,
6(2), 024111.
49. Wang, X., et al. (2016). 3D bioprinting technologies for hard tissue and organ engineering.
Materials (Basel), 9(10), 802.
50. Wu, P. K., & Ringeisen, B. R. (2010). Development of human umbilical vein endothelial cell
(HUVEC) and human umbilical vein smooth muscle cell (HUVSMC) branch/stem structures
on hydrogel layers via biological laser printing (BioLP). Biofabrication, 2(1), 014111.
51. Wu, W., DeConinck, A., & Lewis, J. A. (2011). Omnidirectional printing of 3D microvascular
networks. Advanced Materials, 23(24), H178–H183.
52. Xiaohong, W., Kai, H., & Weiming, Z. (2013). Optimizing the fabrication processes for manufacturing a hybrid hierarchical polyurethane–cell/hydrogel construct. Journal of Bioactive and
Compatible Polymers, 28(4), 303–319.
53. Xu, C., et al. (2012). Scaffold-free inkjet printing of three-dimensional zigzag cellular tubes.
Biotechnology and Bioengineering, 109(12), 3152–3160.
54. Zhang, Y. S., et al. (2016). Bioprinting 3D microfibrous scaffolds for engineering endothelialized myocardium and heart-on-a-chip. Biomaterials, 110, 45–59.
55. Zhao, L., et al. (2012). The integration of 3-D cell printing and mesoscopic fluorescence
molecular tomography of vascular constructs within thick hydrogel scaffolds. Biomaterials,
33(21), 5325–5332.
56. Zhu, W., et al. (2017). Direct 3D bioprinting of prevascularized tissue constructs with complex
microarchitecture. Biomaterials, 124, 106–115.
5 3D Printing Technology for Vascularization
37. Murphy, S. V., & Atala, A. (2014). 3D bioprinting of tissues and organs. Nature Biotechnology,
32(8), 773–785.
38. Nakamura, M., Nishiyama, Y., & Henmi, C. 2008. 3D micro-fabrication by inkjet 3D biofabrication for 3D tissue engineering. In 2008 International Symposium on Micro-Nano
Mechatronics and Human Science.
39. Nishiyama, Y., et al. (2008). Ink jet three-dimensional digital fabrication for biological tissue manufacturing: Analysis of alginate microgel beads produced by ink jet droplets for
three dimensional tissue fabrication. Journal of Imaging Science and Technology, 52(6),
60201-1–60201-6.
40. Nishiyama, Y., et al. (2008). Development of a three-dimensional bioprinter: construction of
cell supporting structures using hydrogel and state-of-the-art inkjet technology. Journal of
Biomechanical Engineering, 131(3), 035001–035001-6.
41. Norotte, C., et al. (2009). Scaffold-free vascular tissue engineering using bioprinting.
Biomaterials, 30(30), 5910–5917.
42. Ozbolat, I. T. (2015). Scaffold-based or scaffold-free bioprinting: Competing or complementing approaches? Journal of Nanotechnology in Engineering and Medicine, 6(2),
024701–024701-6.
43. Ozbolat, I. T. (2017). 3D bioprinting: Fundamentals, principles and applications. New York:
Elsevier.
44. Ozbolat, I. T., Moncal, K. K., & Gudapati, H. (2017). Evaluation of bioprinter technologies.
Additive Manufacturing, 13(Suppl C), 179–200.
45. Poldervaart, M. T., et al. (2013). Sustained release of BMP-2 in bioprinted alginate for osteogenicity in mice and rats. PLoS One, 8(8), e72610.
46. Richards, D., et al. (2017). 3D bioprinting for vascularized tissue fabrication. Annals of
Biomedical Engineering, 45(1), 132–147.
47. Siallagan, D., et al. (2017). Virtual surgical planning, flow simulation, and 3-dimensional
electrospinning of patient-specific grafts to optimize Fontan hemodynamics. The Journal of
Thoracic and Cardiovascular Surgery, 155(4), 1734–1742.
48. Tan, Y., et al. (2014). 3D printing facilitated scaffold-free tissue unit fabrication. Biofabrication,
6(2), 024111.
49. Wang, X., et al. (2016). 3D bioprinting technologies for hard tissue and organ engineering.
Materials (Basel), 9(10), 802.
50. Wu, P. K., & Ringeisen, B. R. (2010). Development of human umbilical vein endothelial cell
(HUVEC) and human umbilical vein smooth muscle cell (HUVSMC) branch/stem structures
on hydrogel layers via biological laser printing (BioLP). Biofabrication, 2(1), 014111.
51. Wu, W., DeConinck, A., & Lewis, J. A. (2011). Omnidirectional printing of 3D microvascular
networks. Advanced Materials, 23(24), H178–H183.
52. Xiaohong, W., Kai, H., & Weiming, Z. (2013). Optimizing the fabrication processes for manufacturing a hybrid hierarchical polyurethane–cell/hydrogel construct. Journal of Bioactive and
Compatible Polymers, 28(4), 303–319.
53. Xu, C., et al. (2012). Scaffold-free inkjet printing of three-dimensional zigzag cellular tubes.
Biotechnology and Bioengineering, 109(12), 3152–3160.
54. Zhang, Y. S., et al. (2016). Bioprinting 3D microfibrous scaffolds for engineering endothelialized myocardium and heart-on-a-chip. Biomaterials, 110, 45–59.
55. Zhao, L., et al. (2012). The integration of 3-D cell printing and mesoscopic fluorescence
molecular tomography of vascular constructs within thick hydrogel scaffolds. Biomaterials,
33(21), 5325–5332.
56. Zhu, W., et al. (2017). Direct 3D bioprinting of prevascularized tissue constructs with complex
microarchitecture. Biomaterials, 124, 106–115.
5 3D Printing Technology for Vascularization
