Page 362 - IJB-9-3
P. 362

International Journal of Bioprinting                     Decellularized  materials for bioprinting of liver constructs



            53.  Murphy SV, De Coppi P, Atala A, 2019, Opportunities and   65.  Li X, Liu B, Pei B,  et al., 2020, Inkjet bioprinting of
               challenges of translational 3D bioprinting. Nat Biomed Eng,   biomaterials. Chem Rev, 120:10793–10833.
               4:370–380.
                                                                  https://doi.org/10.1021/acs.chemrev.0c00008
               https://doi.org/10.1038/s41551-019-0471-7
                                                               66.  Gu Z, Fu J, Lin H, et al., 2020, Development of 3D bioprinting:
            54.  Weekes  A,  Bartnikowski  N,  Pinto  N,  et al.,  2022,   From printing methods to biomedical applications. Asian J
               Biofabrication of small diameter tissue-engineered vascular   Pharm Sci, 15:529–557.
               grafts. Acta Biomater, 138:92–111.
                                                                  https://doi.org/10.1016/j.ajps.2019.11.003
               https://doi.org/10.1016/j.actbio.2021.11.012
                                                               67.  Levato R, Jungst T, Scheuring RG, et al., 2020, From shape to
            55.  Taormina G, Sciancalepore C, Messori M, et al., 2018, 3D   function: The next step in bioprinting. Adv Mater, 1906423.
               printing  processes  for  photocurable  polymeric  materials:      https://doi. org/10.1002/adma.201906423
               Technologies, materials, and future trends. J Appl Biomater
               Funct Mater, 16:151–160.                        68.  Carlos Mota C, Camarero-Espinosa S, Baker MB,  et al.,
                                                                  2020, Bioprinting: From tissue and organ development to in
               https://doi.org/10.1177/2280800018764770
                                                                  vitro models. Chem Rev, 120(19):10547–10607.
            56.  Krkobabić M, Medarević D, Pešić N, et al., 2020, Digital light   https://doi.org/10.1021/acs.chemrev.9b00789
               processing (DLP) 3D printing of atomoxetine hydrochloride
               tablets  using  photoreactive  suspensions.  Pharmaceutics,   69.  Jorgensen AM, Yoo JJ, Anthony A, 2020, Solid organ
               12:E833.                                           bioprinting: Strategies to achieve organ function. Chem Rev,
                                                                  120(19):11093–11127.
               https://doi.org/10.3390/pharmaceutics12090833
                                                                  https://doi.org/10.1021/acs.chemrev.0c00145
            57.  Ozbolat IT, 2015, Bioprinting scale-up tissue and organ
               constructs for transplantation, Trends Biotechnol, 33:395–400.  70.  Wang Y, Li J, Li Y,  et al., 2021, Biomimetic bioinks of
                                                                  nanofibrillar polymeric hydrogels for 3D bioprinting. Nano
               https://doi.org/10.1016/j.tibtech.2015.04.005
                                                                  Today, 39:101180.
            58.  Rengier F, Mehndiratta A, Tengg-Kobligk HV, et al., 2010,   https://doi.org/10.1016/j.nantod.2021.101180
               3D printing based on imaging data: Review of medical
               applications. Int J Comput Assist Radiol Surg, 5:335–341.  71.  Lee J, Lee S, Ahmad T, et al., 2020, Human adipose-derived
                                                                  stem cell spheroids incorporating platelet-derived growth
               https://doi.org/10.1007/s11548-010-0476-x
                                                                  factor (PDGF) and bio-minerals for vascularized bone
            59.  Stampfl J, Baudis S, Heller C, et al., 2008, Photopolymers with   tissue engineering. Biomaterials, 255:120192.
               tunable mechanical properties processed by laser-based high-  https://doi.org/10.1016/j.biomaterials.2020.120192
               resolution stereolithography. J Micromech Microeng, 18:125014.
                                                               72.  Kim EM, Lee YB, Kim SJ, et al., 2019, Fabrication of core-
               https://doi.org/10.1088/0960-1317/18/12/125014
                                                                  shell spheroids as building blocks for engineering 3D
            60.  Tumbleston JR, Shirvanyants D, Ermoshkin N, et al., 2015,   complex vascularized tissue. Acta Biomater, 100:158–172.
               Additive manufacturing. Continuous liquid interface   https://doi.org/10.1016/j.actbio.2019.09.028
               production of 3D objects. Science, 347:1349–1352.
                                                               73.  Nakamura M, Iwanaga S, Henmi C, et al., 2010, Biomatrices
               https://doi.org/10.1126/science.aaa2397
                                                                  and biomaterials for future developments of bioprinting and
            61.  Murphy SV, Atala A, 2014, 3D bioprinting of tissues and   biofabrication. Biofabrication, 2(1):014110.
               organs. Nat Biotechnol, 32:773–785.
                                                                  https://iopscience.iop.org/article/10.1088/1758-5082/2/1/014110
               https://doi.org/10.1038/nbt.2958
                                                               74.  George J, Hsu CC,  Ba LT,  et al., 2020,  Neural tissue
            62.  Guillotin B, Guillemot F, 2011, Cell patterning technologies for   engineering with structured hydrogels in CNS models and
               organotypic tissue fabrication. Trends Biotechnol, 29:183–190.  therapies. Biotechnol Adv, 42:107370.
               https://doi.org/10.1016/j.tibtech.2010.12.008      https://doi.org/10.1016/j.biotechadv.2019.03.009
            63.  Arai K, Iwanaga S, Toda H, et al., 2011, Three-dimensional   75.  Pereira RF, Bártolo PJ, 2015, 3D photo-fabrication for tissue
               inkjet biofabrication based on designed images.    engineering and drug delivery. Engineering, 1:90–112.
               Biofabrication, 3:034113.
                                                                  https://doi.org/10.15302/J-ENG-2015015
               https://iopscience.iop.org/article/10.1088/1758-5082/3/3/034113
                                                               76.  Unagolla JM, Jayasuriya AC, 2020, Hydrogel-based
            64.  Choudhury D, Anand S, Naing MW, 2018, The arrival   3D bioprinting: A comprehensive review on cell-laden
               of  commercial bioprinters—Towards  3D  bioprinting   hydrogels, bioink formulations, and future perspectives.
               revolution. Int J Bioprint, 4:139.                 Appl Mater Today, 18:100479.
               https://doi.org/10.18063/IJB.v4i2.139              https://doi.org/10.1016/j.apmt.2019.100479


            Volume 9 Issue 3 (2023)                        354                          https://doi.org/10.18063/ijb.714
   357   358   359   360   361   362   363   364   365   366   367