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International Journal of Bioprinting                          Oozing 3D-printed scaffolds for tissue engineering




            Acknowledgments                                    3.   Shin H, Jo S, Mikos AG. Biomimetic materials for tissue
                                                                  engineering. Biomaterials. 2003;24(24):4353-4364.
            None.                                                 doi: 10.1016/S0142-9612(03)00339-9

            Funding                                            4.   Yue B. Biology of the extracellular matrix: an overview.  J
                                                                  Glaucoma. 2014;23(8):S20-S23.
            The authors would like to thank the Government of      doi: 10.1097/IJG.0000000000000108
            Catalonia [2017 SGR 708 and 2021 XARDI 00002]; the   5.   Ceretti E, Ginestra P, Neto PI, Fiorentino A, da Silva JVL.
            Spanish Ministry of Science and Innovation Ramón y Cajal   Multi-layered scaffolds production via fused deposition
            fellowship [RYC2018-025977-I]; MINECO/FEDER Project   modeling (FDM) using an open source 3D printer: process
            [RTI2018-096088-J-100]; and the PO FEDER of Catalonia   parameters optimization for dimensional accuracy and
            2014–2020 [project PECT Osona Transformació Social,   design reproducibility. Procedia CIRP. 2017;65:13-18.
            Ref. 001-P-000382].                                   doi: 10.1016/j.procir.2017.04.042
                                                               6.   Jiang X, Zheng W, Takayama S, Chapman RG, Kane
            Conflict of interest                                  RS,  Whitesides  GM.  Micro-scale  patterning  of  cells  and
                                                                  their environment. In: Lanza R, Langer R, Vacanti JP,
            The authors declare no conflicts of interest.
                                                                  eds.  Principles of Tissue Engineering.  4th ed. Cambridge,
                                                                  Massachusetts: Elsevier Inc.; 2013: 359-384.
            Author contributions                                  doi: 10.1016/B978-0-12-398358-9.00019-7
            Conceptualization: Juan Crespo-Santiago            7.   Richards DJ, Tan Y, Jia J, Yao H, Mei Y. 3D printing for tissue
            Data curation: Laia Millan, Oriol Chico, Pau Oliver   engineering. ISR J Chem. 2013;53(9-10):805-814.
            Formal analysis: Juan Crespo-Santiago, Rafa Madariaga     doi: 10.1002/ijch.201300086
            Funding acquisition: Marta Otero-Viñas, Roman Perez  8.   Lee M, Wu BM. Recent advances in 3D printing of tissue
            Investigation: Juan Crespo-Santiago, Luis M. Delgado, Laia   engineering scaffolds. Methods Mol Biol. 2012;868:257-267.
               Millan, Oriol Chico, Pau Oliver                    doi: 10.1007/978-1-61779-764-4_15
            Methodology: Juan Crespo-Santiago                  9.   Choi JW, Kim N. Clinical application of three-dimensional
            Resources: Luis M. Delgado                            printing technology in craniofacial plastic surgery.  Arch
            Validation: Juan Crespo-Santiago                      Plast Surg. 2015;42(3):267-277.
            Visualization: Juan Crespo-Santiago                   doi: 10.5999/aps.2015.42.3.267
            Writing – original draft: Juan Crespo-Santiago     10.  Jakus AE, Secor EB, Rutz AL, Jordan SW, Hersam MC, Shah
            Writing – review & editing:  Marta Otero-Viñas, Luis   RN. Three-dimensional printing of high-content graphene
               M Delgado                                          scaffolds for electronic and biomedical applications.  ACS
                                                                  Nano. 2015;9(4):4636-4648.
            Ethics approval and consent to participate            doi: 10.1021/acsnano.5b01179
            Not applicable.                                    11.  Huang H, Zhang B, Zhong J, et al. The behavior between
                                                                  fluid and structure from coupling system of bile, bile duct,
            Consent for publication                               and polydioxanone biliary stent: a numerical method. Med
                                                                  Eng Phys. 2023;113:103966.
            Not applicable.                                       doi: 10.1016/J.MEDENGPHY.2023.103966

            Availability of data                               12.  Xu Y, Zhang F, Zhai W, Cheng S, Li J, Wang Y. Unraveling
                                                                  of advances in 3D-printed polymer-based bone scaffolds.
            G-codes  can   be   downloaded   directly  from:      Polymers. 2022;14(3).
            https://github.com/JuanCrespoSantiago/Oozing-Gcodes.git     doi: 10.3390/polym14030566
                                                               13.  Valashani SMM, Barrett CJ, Barthelat F. Self-assembly
            References                                            of microscopic tablets within polymeric thin films: a
                                                                  possible pathway towards new hybrid materials. RSC Adv.
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            2.   Ikada Y. Challenges in tissue engineering. J R Soc Interface.   scaffolds for bone tissue engineering.  Bioact Mater.
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            Volume 10 Issue 2 (2024)                       514                                doi: 10.36922/ijb.2337
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