Page 340 - IJB-9-1
P. 340
International Journal of Bioprinting Review on Hybrid Biomanufacturing Systems
Consent for publication for highly controlled process. Int J Bioprint,6: 271.
Not applicable. https://doi.org/10.18063/ijb.v6i3.271
13. Jiang T, Munguia-Lopez JG, Flores-Torres S, et al., Extrusion
Availability of data bioprinting of soft materials: An emerging technique for
Not applicable. biological model fabrication. Appl Phys Rev, 6: 011310.
14. Ng WL, Lee JM, Zhou M, et al., Vat polymerization-based
References bioprinting-process, materials, applications and regulatory
challenges. Biofabrication, 12: 022001.
1. Bártolo P, Chua C, Almeida H, et al., 2009, Biomanufacturing
for tissue engineering: present and future trends. Virtual https://doi.org/10.1088/1758-5090/ab6034
Phys Prototyp, 4: 203–216.
15. Gauvin R, Chen YC, Lee JW, et al., 2012, Microfabrication
2. Xu Y, Chen C, Hellwarth PB, et al., 2019, Biomaterials for of complex porous tissue engineering scaffolds using 3D
stem cell engineering and biomanufacturing. Bioact Mater, projection stereolithography. Biomaterials, 33: 3824–3834.
4: 366–379.
https://doi.org/10.1016/j.biomaterials.2012.01.048
https://doi.org/10.1016/j.bioactmat.2019.11.002
16. Shen Y, Tang H, Huang X, et al., 2020, DLP printing
3. Vyas C, Pereira R, Huang B, et al., 2017, Engineering the photocurable chitosan to build bio-constructs for tissue
vasculature with additive manufacturing. Curr Opin Biomed engineering. Carbohydr Polym, 235: 115970.
Eng, 2: 1–13.
https://doi.org/10.1016/j.carbpol.2020.115970
4. Mota C, Puppi D, Chiellini F, et al., 2015, Additive 17. Song J, Michas C, Chen CS, et al., 2020, From simple to
manufacturing techniques for the production of tissue architecturally complex hydrogel scaffolds for cell and tissue
engineering constructs. J Tissue Eng Regen Med, 9: 174–190.
engineering applications: Opportunities presented by two‐
https://doi.org/10.1002/term.1635 photon polymerization. Adv Healthc Mater, 9: 1901217.
5. Vyas C, Poologasundarampillai G, Hoyland J, et al., 2017, 18. Kumar P, Ebbens S, Zhao X, 2021, Inkjet printing of
3D printing of biocomposites for osteochondral tissue mammalian cells-theory and applications. Bioprinting, 23:
engineering. In: Biomedical Composites. 2 ed. Elsevier, e00157.
nd
Netherlands. p.261–302.
19. Gudapati H, Dey M, Ozbolat I, 2016, A comprehensive
6. Tavakoli S, Klar AS, 2021, Bioengineered skin substitutes: review on droplet-based biomanufacturing: past, present
Advances and future trends. Appl Sci, 11: 1493. and future. Biomaterials 102:20-42.
7. Xue J, Singh S, Zhou Y, et al., 2022, A biodegradable 3D 20. Li J, Chen M, Fan X, et al., 2016, Recent advances in
woven magnesium-based scaffold for orthopedic implants. biomanufacturing techniques: Approaches, applications and
Biofabrication, 14: 034107. future prospects. J Transl Med, 14: 271.
https://doi.org/10.1088/1758-5090/ac73b8 21. Hölzl K, Lin S, Tytgat L, et al., 2016. Bioink properties before,
during and after 3D biomanufacturing. Biofabrication,
8. Pillai S, Upadhyay A, Khayambashi P, et al., 2021, Dental 8: 032002.
3D-printing: Transferring art from the laboratories to the
clinics. Polymers (Basel), 13: 157. 22. Li K, Liu JK, Chen WS, et al., 2018, Controllable printing
droplets on demand by piezoelectric inkjet: Applications
https://doi.org/10.3390/polym13010157
and methods. Microsyst Technol, 24: 879–889.
9. Lafuente-Merchan M, Ruiz-Alonso S, García-Villén F, 23. Saunders RE, Derby B, 2014, Inkjet printing biomaterials
et al., 2022, Progress in 3D bioprinting technology for for tissue engineering: Biomanufacturing. Int Mater Rev,
osteochondral regeneration. Pharmaceutics, 14: 1578.
59: 430–448.
https://doi.org/10.3390/pharmaceutics14081578
24. Okubo N, Qureshi A, Dalgarno K, et al., 2019, Cost-effective
10. Alonzo M, El Khoury R, Nagiah N, et al., 2022, 3D microvalve-assisted bioprinter for tissue engineering.
Biofabrication of a cardiac tissue construct for sustained Biomanufacturing, 13: e00043.
longevity and function. ACS Appl Mater Interfaces, 25. Yan X, Zhang L, Sett S, et al., 2019, Droplet jumping:
14: 21800–21813.
Effects of droplet size, surface structure, pinning, and liquid
https://doi.org/10.1021/acsami.1c23883 properties. ACS Nano, 13: 1309–1323.
11. Li X, Liu B, Pei B, et al., 2020, Inkjet bioprinting of 26. Graham AD, Olof SN, Burke MJ, et al., 2017, High-resolution
biomaterials. Chem Rev, 120: 10793–10833. patterned cellular constructs by droplet-based 3D printing.
Sci Rep, 7: 7004.
12. Yusupov V, Churbanov S, Churbanova E, et al., 2020, Laser-
induced forward transfer hydrogel printing: A defined route 27. Negro A, Cherbuin T, Lutolf MP, 2018, 3D inkjet printing of
Volume 9 Issue 1 (2023) 332 https://doi.org/10.18063/ijb.v9i1.646

