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Materials Science in Additive Manufacturing                            Bioactive hydrogels for 3D bioprinting



            Ethics approval and consent to participate            (Basel). 2019;12(20):3323.

            Not applicable.                                       doi: 10.3390/MA12203323
                                                               10.  Ho TC, Chang CC, Chan HP, et al. Hydrogels: Properties and
            Consent for publication                               applications in biomedicine. Molecules. 2022;27(9):2902.

            Not applicable.                                       doi: 10.3390/MOLECULES27092902
            Availability of data                               11.  El-Sherbiny IM, Yacoub MH. Hydrogel scaffolds for tissue
                                                                  engineering: Progress and challenges. Glob Cardiol Sci Pract.
            Data is available from the corresponding author upon   2013;2013(3):316-342.
            reasonable request.                                   doi: 10.5339/gcsp.2013.38

            References                                         12.  Lin X, Zhao X, Xu C, Wang L, Xia Y. Progress in the mechanical
                                                                  enhancement of hydrogels: Fabrication strategies and
            1.   Theus AS, Ning L, Hwang B,  et al. Bioprintability:   underlying mechanisms. J Polym Sci. 2022;60(17):2525-2542.
               Physiomechanical  and  biological  requirements  of
               materials for 3D bioprinting processes.  Polymers (Basel).      doi: 10.1002/pol.20220154
               2020;12(10):2262.                               13.  Maciel BR, Baki K, Oelschlaeger C, Willenbacher N. The
               doi: 10.3390/polym12102262                         influence of rheological and wetting properties of hydrogel-
                                                                  based bio-inks on extrusion-based bioprinting.  Chem Ing
            2.   Matai I, Kaur G, Seyedsalehi A, McClinton A, Laurencin CT.   Tech. 2022;94(3):393-401.
               Progress in 3D bioprinting technology for tissue/organ
               regenerative engineering. Biomaterials. 2020;226:119536.     doi: 10.1002/cite.202100139
               doi: 10.1016/J.BIOMATERIALS.2019.119536         14.  Unagolla JM, Jayasuriya AC. Hydrogel-based 3D bioprinting:
                                                                  A  comprehensive review on cell-laden hydrogels, bioink
            3.   Groll J, Burdick JA, Cho DW, et al. A definition of bioinks   formulations, and future perspectives.  Appl Mater Today.
               and their distinction from biomaterial inks. Biofabrication.   2020;18:100479.
               2019;11(1):013001.
                                                                  doi: 10.1016/j.apmt.2019.100479
               doi: 10.1088/1758-5090/aaec52
                                                               15.  Gillispie GJ, Copus J, Uzun-Per M,  et al. The correlation
            4.   Fatimi A, Okoro OV, Podstawczyk D, Siminska-     between rheological properties and extrusion-based
               Stanny  J, Shavandi A. Natural hydrogel-based bio-inks   printability in bioink artifact quantification.  Mater Des.
               for 3D bioprinting in tissue engineering: A  review.  Gels.   2023;233:112237.
               2022;8(3):179.
                                                                  doi: 10.1016/j.matdes.2023.112237
               doi: 10.3390/gels8030179
                                                               16.  Lee SC, Gillispie G, Prim P, Lee SJ. Physical and chemical
            5.   Mancha Sánchez E, Gómez-Blanco JC, López Nieto E, et al.   factors influencing the printability of hydrogel-based
               Hydrogels for bioprinting: A systematic review of hydrogels   extrusion bioinks. Chem Rev. 2020;120(19):10834-10886.
               synthesis, bioprinting parameters, and bioprinted structures
               behavior. Front Bioeng Biotechnol. 2020;8:776.     doi: 10.1021/acs.chemrev.0c00015
                                                               17.  He Y, Yang F, Zhao H, Gao Q, Xia B, Fu J. Research
               doi: 10.3389/fbioe.2020.00776
                                                                  on the printability  of  hydrogels in  3D  bioprinting.  Sci
            6.   Gillispie G, Prim P, Copus J, et al. Assessment methodologies   Rep. 2016;6:29977.
               for extrusion-based bioink printability.  Biofabrication.      doi: 10.1038/srep29977
               2020;12(2):022003.
                                                               18.  Mondal A, Gebeyehu A, Miranda M, et al. Characterization
               doi: 10.1088/1758-5090/ab6f0d
                                                                  and printability of sodium alginate-Gelatin hydrogel for
            7.   Fayyazbakhsh F, Leu MC. A brief review on 3D bioprinted   bioprinting NSCLC co-culture. Sci Rep. 2019;9(1):19914.
               skin substitutes. Procedia Manuf. 2020;48:790-796.
                                                                  doi: 10.1038/s41598-019-55034-9
               doi: 10.1016/j.promfg.2020.05.115
                                                               19.  Pepelanova I, Kruppa K, Scheper T, Lavrentieva A. Gelatin-
            8.   Fayyazbakhsh F, Khayat MJ, Leu MC. 3D-printed gelatin-  methacryloyl (GelMA) hydrogels with defined degree of
               alginate hydrogel dressings for burn wound healing:   functionalization as a versatile toolkit for 3D Cell culture and
               A comprehensive study. Int J Bioprint. 2022;8(4):618.  extrusion bioprinting. Bioengineering (Basel). 2018;5(3):55.
               doi: 10.18063/ijb.v8i4.618                         doi: 10.3390/BIOENGINEERING5030055
            9.   Mantha S, Pillai S, Khayambashi P, et al. Smart hydrogels   20.  Schwab A, Levato R, D’Este M, Piluso S, Eglin D, Malda J.
               in tissue engineering and regenerative medicine. Materials   Printability and shape fidelity of bioinks in 3D bioprinting.


            Volume 3 Issue 1 (2024)                         14                      https://doi.org/10.36922/msam.2845
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