Page 227 - IJB-9-6
P. 227

International Journal of Bioprinting                     Multi-Cellular tissues/organoids manufacturing strategies




               of magnetic beads with different sizes via optically induced   94.  Caprio ND, Burdick JA, 2022, Engineered biomaterials to
               dielectrophoresis (ODEP) for high signal-to-noise ratios   guide spheroid formation, function, and fabrication into 3D
               (SNRs) and multiplex fluorescence-based biosensing   tissue constructs. Acta Biomater, 165: 4–18..
               applications. Biosensors, 12(9): 755.
                                                                  https://doi.org/10.1016/j.actbio.2022.09.052
               https://doi.org/10.3390/bios12090755
                                                               95.  Cooper SM, Rainbow RS, 2022, The developing field of
            84.  Bhattacharjee T, Gil CJ, Marshall SL, et al., 2016, Liquid-  scaffold-free tissue engineering for articular cartilage repair.
               like solids support cells in 3D. ACS Biomater Sci Eng, 2(10):   Tissue Eng Part B Rev, 28(5): 995–1006.
               1787–1795.
                                                                  https://doi.org/10.1089/ten.teb.2021.0130
               https://doi.org/10.1021/acsbiomaterials.6b00218
                                                               96.  Pignatelli C, Campo F, Neroni A, et al., 2022, Bioengineering
            85.  Noor N, Shapira A, Edri R,  et al., 2019, 3D printing of   the vascularized endocrine pancreas: A fine-tuned interplay
               personalized thick and perfusable cardiac patches and   between vascularization, extracellular-matrix-based scaffold
               hearts. Adv Sci, 6(11): 1900344.                   architecture, and insulin-producing cells. Transpl Int, 35: 10555.
               https://doi.org/10.1002/advs.201900344             https://doi.org/10.3389/ti.2022.10555
            86.  Jeon O, Lee YB, Jeong H, et al., 2019, Individual cell-only   97.  Levato R, Jungst T, Scheuring RG, et al., 2020, From shape
               bioink and photocurable supporting medium for 3D   to function: The next step in bioprinting. Adv Mater, 32(12):
               printing and generation of engineered tissues with complex   1906423.
               geometries. Mater Horiz, 6(8): 1625–1631.
                                                                  https://doi.org/10.1002/adma.201906423
               https://doi.org/10.1039/C9MH00375D
                                                               98.  de Ruijter M, Ribeiro A, Dokter I, et al., 2019, Simultaneous
            87.  Skylar-Scott MA, Uzel SGM, Nam LL,  et al., 2019,
               Biomanufacturing of organ-specific tissues with high   micropatterning  of  fibrous  meshes  and  bioinks  for  the
               cellular density and embedded vascular channels. Sci Adv,   fabrication of living tissue constructs.  Adv Healthc Mater,
               5(9): eaaw2459.                                    8(7): 1800418.
                                                               99.  Lv S, Nie J, Gao Q, et al., 2020, Micro/nanofabrication of
               https://doi.org/10.1126/sciadv.aaw2459
                                                                  brittle hydrogels using 3D printed soft ultrafine fiber molds
            88.  Brassard JA, Nikolaev M, Hübscher T,  et al., 2021,   for damage-free demolding. Biofabrication, 12(2): 025015.
               Recapitulating macro-scale tissue self-organization through
               organoid bioprinting. Nat Mater, 20(1): 22–29.     https://doi.org/10.1088/1758-5090/ab57d8
               https://doi.org/10.1038/s41563-020-00803-5      100. Chakraborty J, Ghosh S, 2020, Cellular proliferation, self-
                                                                  assembly, and modulation of signaling pathways in  silk
            89.  Ovsianikov A, Khademhosseini A, Mironov V, 2018,   fibroin gelatin-based 3D bioprinted constructs.  ACS Appl
               The synergy of scaffold-based and scaffold-free tissue   Bio Mater, 3(12): 8309–8320.
               engineering strategies. Trends Biotechnol, 36(4): 348–357.
                                                                  https://doi.org/10.1021/acsabm.0c01252
               https://doi.org/10.1016/j.tibtech.2018.01.005
                                                               101. Yu Y, Moncal KK, Li J,  et al., 2016, Three-dimensional
            90.  Poh PS, Lingner T, Kalkhof S,  et al., 2022, Enabling   bioprinting using self-assembling scalable scaffold-free
               technologies towards personalization of scaffolds for   “tissue strands” as a new bioink. Sci Rep, 6(1): 28714.
               large bone defect regeneration.  Curr Opin Biotechnol, 74:
               263–270.                                           https://doi.org/10.1038/srep28714
               https://doi.org/10.1016/j.copbio.2021.12.002    102. Dissanayaka  WL,  Zhu  L,  Hargreaves  KM,  et al.,  2014,
                                                                  Scaffold-free prevascularized microtissue spheroids for pulp
            91.  Ponnada S, Babu Gorle D, Chandra Bose RS, et al., 2022,
               Current insight into 3D printing in solid-state lithium-  regeneration. J Dent Res, 93(12): 1296–1303.
               ion batteries: A perspective.  Batter Supercaps, 5(8):    https://doi.org/10.1177/0022034514550040
               e202200223.
                                                               103. Laurent J, Blin G, Chatelain F, et al., 2017, Convergence of
               https://doi.org/10.1002/batt.202200223             microengineering and  cellular  self-organization towards
            92.  Badhe RV, Chatterjee A, Bijukumar D, et al., 2023, Current   functional tissue manufacturing.  Nat Biomed Eng, 1(12):
               advancements in bio-ink technology for cartilage and bone   939–956.
               tissue engineering. Bone, 171: 116746.             https://doi.org/10.1038/s41551-017-0166-x
               https://doi.org/10.1016/j.bone.2023.116746      104. McMaster R, Hoefner C, Hrynevich A, et al., 2019, Tailored
            93.  Jafari  A,  Ajji Z, Mousavi  A,  et al.,  2022, Latest  advances  in   melt electrowritten scaffolds for the generation of sheet‐like
               3D-bioprinting of cardiac tissues.  Adv Mater Technol, 7(11):   tissue constructs from multicellular spheroids. Adv Healthc
               2101636.                                           Mater, 8(7): 1801326.
               https://doi.org/10.1002/admt.202101636             https://doi.org/10.1002/adhm.201801326


            Volume 9 Issue 6 (2023)                        219                        https://doi.org/10.36922/ijb.0135
   222   223   224   225   226   227   228   229   230   231   232