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International Journal of Bioprinting                              Bioprinting cell-laden protein-based hydrogel




            as collagen, gelatin, silk fibroin, fibrin, keratin, elastin,   Ethics approval and consent to participate
            and resilin have drawbacks that need to be addressed for   Not applicable.
            favorable outcomes in bioprinting. In general, significant
            advancements have been made in bioprinting, but there   Consent for publication
            are still obstacles to overcome in order to move the field
            forward. Successful examples of utilizing bioprinting for   Not applicable.
            cartilage and bone TE have been discussed; nevertheless,
            there are multiple parameters and bottlenecks that should   Availability of Data
            be paid attention to. Biophysical and biochemical factors,   The resources that support this review work are available
            as well as considerations for process optimization, must   upon request from the corresponding author.
            be taken into account. All in all, tackling the mentioned
            challenges will ultimately lead to translating bioprinting   References
            concepts into clinical applications in the near future.
                                                               1.   Ozbolat IT, 2017, Bioprinting of osteochondral tissues:
            Acknowledgments                                       A perspective on current gaps and future trends. Int J Bioprint,
            None.                                                 3(2).
                                                                  http://doi:10.18063/IJB.2017.02.007
            Funding                                            2.   Deng C, Chang J, Wu C, 2019, Bioactive scaffolds for
            This work was supported by Alexander von Humboldt     osteochondral regeneration. J Orthop Transl, 17: 15–25.
            Foundation (Fellowship to F.G.), the Outstanding      http://doi:10.1016/j.jot.2018.11.006
            Clinical Discipline Project of Shanghai Pudong (Grant   3.   Gonçalves AM, Moreira A, Weber A,  et al., 2021, Costa,
            No. PWYgy2021-08), the Pudong New Area Traditional    osteochondral tissue engineering: The potential of
            Chinese  Medicine  Science  and  Technology  Innovation   electrospinning and additive manufacturing. Pharmaceutics,
            project (PDZY-2020-0607), the Young Medical Talents   13(7): 983.
            Training Program of Pudong Health Committee of
            Shanghai (Grant No. PWRq 2021-08), the Health Industry   http://doi:10.3390/pharmaceutics13070983
            Clinical Research Project of Shanghai Health Commission   4.   Moris H, Ghaee A, Karimi M, et al., 2022, Preparation and
            (Grant No. 20224Y0393), and the National Natural Science   characterization of Pullulan-based nanocomposite scaffold
            Foundation of China (Grant No. 81971753, 82170897).   incorporating Ag-Silica Janus particles for bone tissue
                                                                  engineering. Biomater Adv, 135: 212733.
            Conflict of interest                                  http://doi:10.1016/j.bioadv.2022.212733
            The authors certify that they have no affiliations with,   5.   Ghorbani F, Ghalandari B, Khan AL, et al., 2020, Decoration
            or involvement in, any organization or entity with any   of electrical conductive polyurethane-polyaniline/polyvinyl
            financial interest or non-financial interest in the subject   alcohol matrixes with mussel-inspired polydopamine for
            matter or materials discussed in this manuscript. All   bone tissue engineering. Biotechnol Prog, 36(6): e3043.
            authors have read and agreed to the published version of   http://doi:10.1002/btpr.3043
            the manuscript.                                    6.   Ghorbani F, Zamanian A, Sahranavard M, 2019, Mussel-
                                                                  inspired polydopamine-mediated surface modification of
            Author contributions                                  freeze-cast poly (ε-caprolactone) scaffolds for bone tissue

            Conceptualization:  Behafarid Ghalandari, Baoqing Yu,   engineering  applications.  Biomed Eng/Biomed Tech,  65(3):
                                                                  273–287.
               Farnaz Ghorbani
            Funding acquisition: Behafarid Ghalandari, Baoqing Yu,   http://doi:10.1515/bmt-2019-0061
               Farnaz Ghorbani                                 7.   Sahranavard M, Zamanian A, Ghorbani F, et al., 2020, A critical
            Supervision:  Behafarid  Ghalandari,  Baoqing  Yu,  Farnaz   review on three dimensional-printed chitosan hydrogels for
               Ghorbani                                           development of tissue engineering. Bioprinting, 17: e00063.
            Visualization: Mehran Khajehmohammadi                 http://doi:10.1016/j.bprint.2019.e00063
            Writing – original draft:  Mehran  Khajehmohammadi,
               Negar Bakhtiary, Niyousha Davari, Soulmaz Sarkari,   8.   Yilmaz B, Al Rashid A, Mou YA, et al., 2021, Bioprinting: A
               Hamidreza Tolabi, Dejian Li                        review of processes, materials and applications. Bioprinting,
            Writing – review & editing: Behafarid Ghalandari, Farnaz   23: e00148.
               Ghorbani                                           https://doi.org/10.1016/j.bprint.2021.e00148


            Volume 9 Issue 6 (2023)                        490                          https://doi.org/10.36922/ijb.1089
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