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International Journal of Bioprinting                                3D bioprinted vascularized tissue models



            56.  Jung M, Ghamrawi S, Du EY, et al., 2022, Advances in 3D   66.  Cho W-W, Ahn M, Kim BS, et al., 2022, Blood-lymphatic
               bioprinting for cancer biology and precision medicine: From   integrated system with heterogeneous melanoma spheroids
               matrix design to application.  Adv Healthc Mater, 11(24):   via in-bath three-dimensional bioprinting for modelling of
               2200690.                                           combinational targeted therapy. Adv Sci, 9(29): 2202093.
               https://doi.org/10.1002/adhm.202200690             https://doi.org/10.1002/advs.202202093
            57.  Kang Y, Datta P, Shanmughapriya S, et al., 2020, 3D   67.  Chiesa I, De Maria C, Lapomarda A, et al., 2020, Endothelial
               bioprinting of tumor models for cancer research. ACS Appl   cells support osteogenesis in an in vitro vascularized bone
               Biomater, 3(9): 5552–5573.                         model developed by 3D bioprinting. Biofabrication, 12(2):
                                                                  025013.
               https://doi.org/10.1021/acsabm.0c00791
                                                                  https://dx.doi.org/10.1088/1758-5090/ab6a1d
            58.  Neufeld L, Yeini E, Pozzi S, et al., 2022, 3D bioprinted cancer
               models: From basic biology to drug development. Nat Rev   68.  Kim BS, Gao G, Kim JY, et al., 2019, 3D cell printing of
               Cancer, 22(12): 679–692.                           perfusable  vascularized  human  skin  equivalent  composed
                                                                  of epidermis, dermis, and hypodermis for better structural
               https://doi.org/10.1038/s41568-022-00514-w
                                                                  recapitulation of native skin.  Adv  Healthc  Mater, 8(7):
            59.  Yi H-G, Jeong YH, Kim Y, et al., 2019, A bioprinted human-  1801019.
               glioblastoma-on-a-chip for the identification of patient-
               specific responses to chemoradiotherapy. Nat Biomed Eng,   https://doi.org/10.1002/adhm.201801019
               3(7): 509–519.                                  69.  Chae S, Kim J, Yi H-G, et al., 2022, 3D bioprinting of an in
                                                                  vitro model of a biomimetic urinary bladder with a contract-
               https://doi.org/10.1038/s41551-019-0363-x
                                                                  release system. Micromachines, 13(2): 277.
            60.  Neufeld L, Yeini E, Reisman N, et al., 2021, Microengineered
               perfusable 3D-bioprinted glioblastoma model for in vivo   https://doi.org/10.3390/mi13020277
               mimicry of tumor microenvironment. Sci Adv, 7(34): eabi9119.  70.  Zhao Z, Chen X, Dowbaj AM, et al., 2022, Organoids. Nat
                                                                  Rev Methods Primers, 2(1): 94.
               https://doi.org/10.1126/sciadv.abi9119
                                                                  https://doi.org/10.1038/s43586-022-00174-y
            61.  Ozturk MS, Lee VK, Zou H, et al., 2020, High-resolution
               tomographic analysis of  in vitro 3D  glioblastoma tumor   71.  Chae S, Lee S-S, Choi Y-J, et al., 2021, 3D cell-printing of
               model under long-term drug treatment.  Sci  Adv, 6(10):   biocompatible and functional meniscus constructs using
               eaay7513.                                          meniscus‐derived bioink. Biomaterials, 267: 120466.
               https://doi.org/10.1126/sciadv.aay7513             https://doi.org/10.1016/j.biomaterials.2020.120466
            62.  Meng F, Meyer CM, Joung D, et al., 2019, 3D bioprinted   72.  Kim BS, Das S, Jang J, et al., 2020, Decellularized
               in  vitro  metastatic  models  via  reconstruction  of  tumor   extracellular matrix-based bioinks for engineering tissue-
               microenvironments. Adv Mater, 31(10): 1806899.     and organ-specific microenvironments. Chem Rev, 120(19):
                                                                  10608–10661.
               https://doi.org/10.1002/adma.201806899
                                                                  https://doi.org/10.1021/acs.chemrev.9b00808
            63.  Kim BS, Cho W-W, Gao G, et al., 2021, Construction of
               tissue-level cancer-vascular model with high-precision   73.  Chae S, Sun Y, Choi Y-J, et al., 2021, 3D cell-printing of
               position control via in situ 3D cell printing. Small Methods,   tendon-bone interface using tissue-derived extracellular
               5(7): 2100072.                                     matrix bioinks for chronic rotator cuff repair. Biofabrication,
                                                                  13(3): 035005.
               https://doi.org/10.1002/smtd.202100072
                                                                  https://dx.doi.org/10.1088/1758-5090/abd159
            64.  Obinu A, Gavini E, Rassu G, et al., 2018, Lymph node
               metastases:  Importance  of  detection  and  treatment   74.  Chae S, Choi Y-J, Cho D-W, 2022, Mechanically and
               strategies. Expert Opin Drug Deliv, 15(5): 459–467.  biologically promoted cell-laden constructs generated
                                                                  using tissue-specific bioinks for tendon/ligament tissue
               https://doi.org/10.1080/17425247.2018.1446937
                                                                  engineering applications. Biofabrication, 14(2): 025013.
            65.  Cao X, Ashfaq R, Cheng F, et al., 2019, A tumor-on-a-chip   https://dx.doi.org/10.1088/1758-5090/ac4fb6
               system with bioprinted blood and lymphatic vessel pair. Adv
               Funct Mater, 29(31): 1807173.
               https://doi.org/10.1002/adfm.201807173









            Volume 9 Issue 5 (2023)                         33                         https://doi.org/10.18063/ijb.748
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