[1] Wang C, Hu H, Li Z, et al.Enhanced osseointegration of titanium alloy implants with laser microgrooved surfaces and graphene oxide coating[J]. ACS Appl Mater Interfaces, 2019, 11(43): 39470-39483. [2] Wang P, Yuan Y, Xu K, et al.Biological applications of copper-containing materials[J]. Bioact Mater, 2021, 6(4): 916-927. [3] Huang Q, Ouyang Z, Tan Y, et al.Activating macrophages for enhanced osteogenic and bactericidal performance by Cu ion release from micro/nano-topographical coating on a titanium substrate[J]. Acta Biomater, 2019, 100: 415-426. [4] Zhuang Y, Zhang S, Yang K, et al.Antibacterial activity of copper-bearing 316L stainless steel for the prevention of implant-related infection[J]. J Biomed Mater Res B Appl Biomater, 2020, 108(2): 484-495. [5] Ewald A, Käppel C, Vorndran E, et al.The effect of Cu(II)-loaded brushite scaffolds on growth and activity of osteoblastic cells[J]. J Biomed Mater Res A, 2012, 100(9): 2392-2400. [6] Liu R, Ma Z, Kunle Kolawole S, et al.In vitro study on cytocompatibility and osteogenesis ability of Ti-Cu alloy[J]. J Mater Sci Mater Med, 2019, 30(7): 75-83. [7] 张臣科, 卢衍锦, 郭宇鹏, 等. 3D打印Ti6Al4V-4Cu合金通过骨免疫调节促进成骨基因的表达[J]. 中国修复重建外科杂志, 2020, 34(9): 1170-1176. Zhang CK, Lu YJ, Guo YP, et al.Three-dimensional printed Ti6Al4V-4Cu alloy promotes osteogenic gene expression through bone immune regulation[J]. Chinese Journal of Reparative and Reconstructive Surgery, 2020, 34(9): 1170-1176. [8] Friedenstein AJ.Precursor cells of mechanocytes[J]. Int Rev Cytol, 1976, 47: 327-359. [9] Wang Y, Zhang W, Yao Q.Copper-based biomaterials for bone and cartilage tissue engineering[J]. J Oorthop Translat, 2021, 29: 60-71. [10] Bartsch I, Willbold E, Yarmolenko S, et al.In vivo fluorescence imaging of apoptosis during foreign body response[J]. Biomaterials, 2012, 33(29): 6926-6932. [11] Huo SC, Yue B.Approaches to promoting bone marrow mesenchymal stem cell osteogenesis on orthopedic implant surface[J]. World J Stem Cells, 2020, 12(7): 545-561. [12] 李改明, 刘思雨, 战德松, 等. 3D打印医用钛合金的抗菌性能和体外生物相容性[J]. 材料研究学报, 2019, 33(2): 117-123. Li GM, Liu SY, Zhan DS, et al.Antibacterial properties and biocompatibility of SLM-fabricated medical titanium alloys[J]. Chinese Journal of Materials Research, 2019, 33(2): 117-123. [13] 马凯, 王敏雅, 李悦, 等. 不同质量分数的钛-铜合金对MC3T3-E1细胞分化的影响研究[J]. 中国实用口腔科杂志, 2018, 11(6): 354-357. Ma K, Wang MY, Li Y, et al.Effect of different concentration of titanium-copper alloys on the differentiation of MC3T3-E1 cells[J]. Chinese Journal of Practical Stomatology, 2018, 11(6): 354-357. [14] Zhang X, Li H, Lin C, et al.Synergetic topography and chemistry cues guiding osteogenic differentiation in bone marrow stromal cells through ERK1/2 and p38 MAPK signaling pathway[J]. Biomat Sci, 2018, 6(2): 418-430. [15] Liu J, Zhang X, Wang H, et al.The antibacterial properties and biocompatibility of a Ti-Cu sintered alloy for biomedical application[J]. Biomed Mater, 2014, 9(2): 025013. [16] Wang T, Wan Y, Liu Z.Fabrication of hierarchical micro/nanotopography on bio-titanium alloy surface for cytocompatibility improvement[J]. J Mater Sci, 2016, 51(21): 9551-9561. |