Page 277 - IJB-9-3
P. 277

International Journal of Bioprinting                            Performance of Bredigite-based bone scaffolds



            Software: Dongxue Liu, Xuan Zhou                   8.   Vidal L, Kampleitner C, Brennan MA, et al., 2020,
            Supervision: Fei Wang, Yihua Feng                     Reconstruction of large skeletal defects: Current clinical
            Validation: Dongxue Liu, Fei Wang                     therapeutic strategies and future directions using 3D
            Visualization: Dongxue Liu                            printing. Front Bioeng Biotechnol, 8:61.
            Writing – original draft: Dongxue Liu                 https://doi.org/10.3389/fbioe.2020.00061
            Writing – review & editing: Fei Wang, Yihua Feng, Yanbin Shi  9.   Wang C, Huang W, Zhou Y, et al., 2020, 3D printing of bone
                                                                  tissue engineering scaffolds. Bioact Mater, 5:82–91.
            Ethics approval and consent to participate
                                                                  https://doi.org/10.1016/j.bioactmat.2020.01.004
            Not applicable.
                                                               10.  Pires LSO, Fernandes MHFV, De Oliveira JMM, 2018,
                                                                  Biofabrication of glass scaffolds by 3D printing for tissue
            Consent for publication                               engineering. Int J Adv Manuf Technol, 98:2665–2676.
            Not applicable.                                       https://doi.org/10.1007/s00170-018-2369-z

            Availability of data                               11.  Jiao C, Xie D, He Z, et al., 2022, Additive manufacturing
                                                                  of bio-inspired ceramic bone scaffolds: Structural design,
            The data and material used to support the findings of   mechanical properties and biocompatibility. Mater Design,
            this study are available from the corresponding author    217:110610.
            upon request                                          https://doi.org/:10.1016/j.matdes.2022.110610
                                                               12.  Bian T, Xing H, 2022, A collagen (Col)/nano-hydroxyapatite
            References                                            (nHA) biological composite bone scaffold with double multi-
                                                                  level interface reinforcement. Arab J Chem, 15:103733.
            1.   Wang WG, Lu ZH, Li JS, et al., 2020, Engineering the
               biological performance of hierarchical nanostructured   https://doi.org/10.1016/j.arabjc.2022.103733
               poly(ε-carpolactone) scaffolds for bone tissue engineering.   13.  Reyes RL, Ghim M-S, Kang N-U, et al., 2022, Development
               Cirp Ann-Manuf Techn, 69:217–220.                  and assessment of modified-honeycomb-structure scaffold
               https://doi.org/10.1016/j.cirp.2020.04.044         for bone tissue engineering. Addit Manuf, 54:102740.
            2.   Andrzejowski  P,  Giannoudis  PV,  2019,  The  ‘diamond   https://doi.org/10.1016/j.addma.2022.102740
               concept’  for  long  bone  non-union  management.  J Orthop   14.  Hou Y, Wang W, Bartolo P, 2022, Investigation of
               Traumatol, 20:21.                                  polycaprolactone for bone tissue engineering scaffolds:
               https://doi.org/10.1186/s10195-019-0528-0          In vitro degradation and biological studies. Mater Design,
                                                                  216:110582.
            3.   Zhao W, He B, Zhou A, et al., 2019, D-RADA16-RGD-reinforced
               nano-hydroxyapatite/polyamide  66  ternary biomaterial  for   https://doi.org/10.1016/j.matdes.2022.110582
               bone formation. Tissue Eng Regen Med, 16:177–289.  15.  Khodabandeh Z, Tanideh N, Aslani FS, et al., 2022, A
               https://doi.org/10.1007/s13770-018-0171-5          comparative in vitro and in vivo study on bone tissue
                                                                  engineering potential of the collagen/nano-hydroxyapatite
            4.   Fu M, Wang F, Lin G, 2021, Design and research of bone   scaffolds loaded with ginger extract and curcumin. Mater
               repair scaffold based on two-way fluid-structure interaction.   Today Commun, 31:103339.
               Comput Methods Programs Biomed, 204:106055.
                                                                  https://doi.org/10.1016/j.mtcomm.2022.103339
               https://doi.org/10.1016/j.cmpb.2021.106055
                                                               16.  Zerankeshi MM, Bakhshi R, Alizadeh R, 2022, Polymer/
            5.   Zou L, Hu L, Pan P, et al., 2022, Icariin-releasing 3D   metal composite 3D porous bone tissue engineering
               printed scaffold for bone regeneration. Compos Part B-Eng,   scaffolds fabricated by additive manufacturing techniques:
               232:109625.                                        A review. Bioprinting, 25:e00191.
               https://doi.org/10.1016/j.compositesb.2022.109625  https://doi.org/10.1016/j.bprint.2022.e00191
            6.   Ma P, Wu W, Wei Y, et al., 2021, Biomimetic gelatin/chitosan/  17.  Ali HU, Iqbal DN, Iqbal M, et al., 2022, HPMC crosslinked
               polyvinyl alcohol/nano-hydroxyapatite  scaffolds for  bone   chitosan/hydroxyapatite scaffolds containing Lemongrass
               tissue engineering. Mater Design, 207:109865.      oil for potential bone tissue engineering applications. Arab J
               https:// doi.org/: 10.1016/j.matdes.2021.109865    Chem, 15:103850.
            7.   Jariwala SH, Lewis GS, Bushman ZJ, et al., 2015, 3D printing   https://doi.org/10.1016/j.arabjc.2022.103850
               of personalized artificial bone scaffolds.  3D Print Addit   18.  Adachi T, Boschetto F, Miyamoto N, et al., 2020, In
               Manuf, 2:56–64.                                    vivo regeneration of large bone defects by cross-linked
               https://doi.org/10.1089/3dp.2015.0001              porous hydrogel: A pilot study in mice combining micro

            Volume 9 Issue 3 (2023)                        269                         https://doi.org/10.18063/ijb.708
   272   273   274   275   276   277   278   279   280   281   282