Page 302 - IJB-9-5
P. 302
International Journal of Bioprinting Blood components for tissue graft bioprinting
construct with human cardiomyocytes and fibroblasts. 65. Taymour R, Kilian D, Ahlfeld T, et al., 2021, 3D bioprinting
ACS Biomater Sci Eng, 5: 4551–4563. of hepatocytes: Core-shell structured co-cultures with
https://doi.org/10.1021/acsbiomaterials.9b00505 fibroblasts for enhanced functionality. Sci Rep, 11: 5130.
55. Freeman S, Ramos R, Alexis Chando P, et al., 2019, A bioink https://doi.org/10.1038/S41598-021-84384-6
blend for rotary 3D bioprinting tissue engineered small- 66. de Melo BAG, Cruz EM, Ribeiro TN, et al., 2021, 3D
diameter vascular constructs. Acta Biomater, 95: 152–164. bioprinting of murine cortical astrocytes for engineering
https://doi.org/10.1016/J.ACTBIO.2019.06.052 neural-like tissue. J Vis Exp., 173: e62691
56. Maiullari F, Costantini M, Milan M, et al., 2018, A multi- https://doi.org/10.3791/62691
cellular 3D bioprinting approach for vascularized heart 67. England S, Rajaram A, Schreyer DJ, et al., 2017, Bioprinted
tissue engineering based on HUVECs and iPSC-derived fibrin-factor XIII-hyaluronate hydrogel scaffolds
cardiomyocytes. Sci Rep, 8: 1–15. with encapsulated Schwann cells and their in vitro
https://doi.org/10.1038/s41598-018-31848-x characterization for use in nerve regeneration. Bioprinting,
5: 1–9.
57. Wang Z, Lee SJ, Cheng H-J, et al., 2018, 3D bioprinted
functional and contractile cardiac tissue constructs. Acta https://doi.org/10.1016/J.BPRINT.2016.12.001
Biomater, 70: 48–56. 68. Tao J, Liu H, Wu W, et al., 2020, 3D-printed nerve conduits
https://doi.org/10.1016/j.actbio.2018.02.007 with live platelets for effective peripheral nerve repair. Adv
Funct Mater, 30: 2004272.
58. Frazer H, You J, Chen Z, et al., 2020, Development of a
platelet lysate–based printable, transparent biomaterial with https://doi.org/10.1002/ADFM.202004272
regenerative potential for epithelial corneal injuries. Transl 69. Han J, Kim DS, Jang H, et al., 2019, Bioprinting of three-
Vis Sci Technol, 9: 1–12. dimensional dentin–pulp complex with local differentiation
https://doi.org/10.1167/TVST.9.13.40 of human dental pulp stem cells. J Tissue Eng, 10: 1–10.
59. You J, Frazer H, Sayyar S, et al., 2022, Development of an in situ https://doi.org/10.1177/2041731419845849
printing system with human platelet lysate-based bio-adhesive 70. Yi K, Li Q, Lian X, et al., 2022, Utilizing 3D bioprinted
to treat corneal perforations. Transl Vis Sci Technol, 11(6): 26. platelet-rich fibrin-based materials to promote the
https://doi.org/10.1167/tvst.11.6.26 regeneration of oral soft tissue. Regen Biomater, 9: rbac021.
60. Albanna M, Binder KW, Murphy SV, et al., 2019, In situ https://doi.org/10.1093/rb/rbac021
bioprinting of autologous skin cells accelerates wound 71. Duin S, Bhandarkar S, Lehmann S, et al., 2022, Viability
healing of extensive excisional full-thickness wounds. Sci and functionality of neonatal porcine islet-like cell clusters
Rep, 9(1): 1856. bioprinted in alginate-based bioinks. Biomedicines, 10: 1420.
https://doi.org/10.1038/s41598-018-38366-w https://doi.org/10.3390/biomedicines10061420
61. Cubo N, Garcia M, Del Cañizo JF, et al., 2017, 3D bioprinting 72. Dani S, Ahlfeld T, Albrecht F, et al., 2021, Homogeneous and
of functional human skin: Production and in vivo analysis. reproducible mixing of highly viscous biomaterial inks and
Biofabrication, 9: 1–12. cell suspensions to create bioinks. Gels, 7: 227.
https://doi.org/10.1088/1758-5090/9/1/015006 https://doi.org/10.3390/GELS7040227
62. Cheng RY, Eylert G, Gariepy J-M, et al., 2021, Handheld 73. Mendes BB, Gómez-Florit M, Hamilton AG, et al., 2020,
instrument for wound-conformal delivery of skin Human platelet lysate-based nanocomposite bioink for
precursor sheets improves healing in full-thickness burns. bioprinting hierarchical fibrillar structures. Biofabrication, 12:
Biofabrication, 12(2): 025002.
015012.
https://doi.org/10.1088/1758-5090/ab6413
https://doi.org/10.1088/1758-5090/ab33e8
63. Del Amo C, Perez-Valle A, Perez-Garrastachu M, et al.,
2021, Plasma-based bioinks for extrusion bioprinting of 74. Min SJ, Lee JS, Nah H, et al., 2021, Development of photo-
advanced dressings. Biomedicines, 9: 1023. crosslinkable platelet lysate-based hydrogels for 3D printing
and tissue engineering. Biofabrication, 13: 044102.
https://doi.org/10.3390/biomedicines9081023
https://doi.org/10.1088/1758-5090/AC1993
64. Diaz-Gomez L, Gonzalez-Prada I, Millan R, et al., 2022, 3D
printed carboxymethyl cellulose scaffolds for autologous 75. Somasekharan LT, Kasoju N, Raju R, et al., 2020, Formulation
growth factors delivery in wound healing. Carbohydr Polym, and characterization of alginate dialdehyde, gelatin,
278: 118924. and platelet-rich plasma-based bioink for bioprinting
applications. Bioengineering, 7: 1–12.
https://doi.org/10.1016/J.CARBPOL.2021.118924
https://doi.org/10.3390/bioengineering7030108
Volume 9 Issue 5 (2023) 294 https://doi.org/10.18063/ijb.762

