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International Journal of Bioprinting                            Low-cost quad-extrusion 3D bioprinting system




            Acknowledgments                                    References
            None.                                              1.   Correia Carreira S, Begum R, Perriman AW. 3D bioprinting:
                                                                  The emergence of programmable biodesign.  Adv  Healthc
            Funding                                               Mater. 2020;9(15):1–14.
            The  research  was  funded  by  the  U.S.  Army Medical      doi: 10.1002/adhm.201900554
            Research Acquisition Activity under Award No.      2.   Zhang Z, Wu C, Dai C, et al. A multi-axis robot-based
            USAMRAA-W81XWH-19-1-0158.       Any    opinions,      bioprinting  system  supporting  natural  cell  function
            findings, and conclusions, or recommendations expressed   preservation and cardiac tissue fabrication.  Bioact  Mater.
            in  this  publication  are  those  of  the  authors  and  do  not   2022;18(February):138–150.
            necessarily reflect the views of the U.S. Army Medical      doi: 10.1016/j.bioactmat.2022.02.009
            Research Acquisition Activity.                     3.   Ramiah P, du Toit LC, Choonara YE, Kondiah PPD, Pillay
                                                                  V. Hydrogel-based bioinks for 3D bioprinting in tissue
            Conflict of interest                                  regeneration. Front Mater. 2020;7(April):1–13.
                                                                  doi: 10.3389/fmats.2020.00076
            The authors declare they have no competing interests.
                                                               4.   Mandrycky C, Wang Z, Kim K, Kim D-H. 3D bioprinting
            Author contributions                                  for engineering complex tissues. Biotechnol Adv. 2016; 34(4):
                                                                  422–434.
            Conceptualization: Ralf Zgeib, Xiaofeng Wang          doi: 10.1016/j.biotechadv.2015.12.011
            Formal analysis: Ralf Zgeib                        5.   Zaeri A, Cao K, Zhang F, Chang RC. A review of the structural
            Funding acquisition: Robert C. Chang                  and physical properties that govern cell interactions with
            Investigation: Ralf Zgeib, Xiaofeng Wang              structured biomaterials enabled by additive manufacturing.
            Methodology: Ralf Zgeib                               Bioprinting. 2022; 26(January):e00201.
            Resources: Robert C. Chang                            doi: 10.1016/j.bprint.2022.e00201
            Supervision: Robert C. Chang                       6.   Moroni L, Boland T, Burdick JA, et al. Biofabrication: A
            Writing – original draft: Ralf Zgeib                  guide to technology and terminology.  Trends Biotechnol.
            Writing – review & editing: Ralf Zgeib, Ahmadreza Zaeri,   2018;36(4):384–402.
               Fucheng Zhang, Kai Cao, Robert C. Chang            doi: 10.1016/j.tibtech.2017.10.015
            Ethics approval and consent to participate         7.   Duan J, Cao Y, Shen Z, et al. 3D bioprinted GelMA/PEGDA
                                                                  hybrid scaffold for establishing in-vitro model of melanoma.
            Not applicable.                                       J Microbiol Biotechnol. 2022;32(3):531–540.
                                                                  doi: 10.4014/jmb.2111.11003
            Consent for publication                            8.   Rostam-Alilou AA, Jafari H, Zolfagharian A, Serjouei
            Not applicable.                                       A,  Bodaghi M. Experimentally validated vibro-acoustic
                                                                  modeling of 3D bio-printed grafts for potential use in
            Availability of data                                  human tympanic membrane regeneration.  Bioprinting.
                                                                  2022;25(January):e00186.
            The datasets generated and analyzed for this study are      doi: 10.1016/j.bprint.2021.e00186
            available upon request from the corresponding author.  9.   Naghieh S, Lindberg G, Tamaddon M, Liu C. Biofabrication

               In the GitHub repository (https://github.com/      strategies for musculoskeletal disorders: Evolution towards
            RalfZgeib/QEB_BioEX), the STL files, modified Marlin      clinical applications. Bioengineering. 2021;8(9).
                                                                  doi: 10.3390/bioengineering8090123
            firmware, and detailed table of components of the QES
            can be found. Also, additional images of the bioprinted   10.   Yu HW, Kim BS, Lee JY, et al. Tissue printing for engineering
            structures using SBP can be found under the folder    transplantable human parathyroid patch to improve
            “Support Bath Printing Outcomes.”                     parathyroid engraftment, integration, and hormone
                                                                  secretion in vivo. Biofabrication. 2021;13(3).
               Additional supporting material can be found in      doi: 10.1088/1758-5090/abf740
            the  Supplementary  File  accompanying this  article. The   11.   Hwang DG, Jo Y, Kim M, et al. A 3D bioprinted hybrid
            supplementary material includes additional figures, tables,   encapsulation system for delivery of human pluripotent stem
            and extended results that provide further insights and   cell-derived pancreatic islet-like aggregates. Biofabrication.
            enhance the understanding of the research presented in   2022;14(1).
            this paper.                                           doi: 10.1088/1758-5090/ac23ac



            Volume 10 Issue 1 (2024)                       309                        https://doi.org/10.36922/ijb.0159
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