Preparation and bioactivity of biodegradable β-tricalcium phosphate / calcium carbonate / phosphate bioactive glass composite porous ceramic

被引:1
作者
Chen W. [1 ]
Liu Y. [1 ]
Zhu J. [1 ]
Zhou M. [1 ]
Chen X. [1 ]
机构
[1] Department of Biomedical Engineering, Guangzhou Medical University, Guangzhou
[2] Stomatology Hospital of Guangzhou Medical University, Guangzhou
基金
中国国家自然科学基金;
关键词
biocompatibility; biodegradation; phosphate bioactive glass; porous ceramics;
D O I
10.1177/2280800019847071
中图分类号
学科分类号
摘要
Background: At present, scaffold biomaterials with great biodegradation and biocompatibility are attracting more and more attention. Phosphate bioactive glass (PBG) without Si has been prepared successfully, with a glass transition temperature below 600°C. Calcium carbonate (CC)-based bioceramics with PBG as binder were sintered rapidly at a lower temperature. β-Tricalcium phosphate (β-TCP) has always been used to synthesize clinical ceramics due to its wonderful biocompatibility. Here, we combined the advantages of these raw materials to obtain a novel β-TCP/CC/PBG composite porous ceramic. Method: The preparation process of β-TCP/CC/PBG was optimized by controlling PBG content, NaCl ratio, sintering temperature, and holding time. Ceramic biodegradability was evaluated by soaking in a Tris-HCl buffer in vitro, and biocompatibility of the new material was indicated using CCK-8 tests and a live/dead fluorescence assay. Results: The best mechanical properties of β-TCP/CC/PBG composite porous ceramics were obtained with a PBG content of 60%, at which point the proportion of NaCl exerted the most significant influence on the density, porosity, and mechanical properties of the materials. The weight loss rate of the composite ceramics was 11.30%, which was much higher than that of β-TCP (1.41%) and hydroxyapatite (0.83%) ceramics. CCK-8 test and live/dead fluorescence assay indicated that the composite porous ceramics showed a biocompatibility similar to that of β-TCP ceramics. Conclusion: β-TCP/CC/PBG composite porous ceramics have potential applications in bone regeneration. It is hoped that the novel biomaterial developed in this study will prove useful for the repair of bone defects. © The Author(s) 2019.
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  • [11] Cooper E.L., Hirabayashi K., Strychar K.B., Et al., Corals and their potential applications to integrative medicine, Evid Based Complement Alternat Med, 2014, pp. 1-9, (2014)
  • [12] He F., Yang F., Zhu J., Et al., Fabrication of a novel calcium carbonate composite ceramic as bone substitute, J Am Ceram Soc, 98, 1, pp. 223-228, (2015)
  • [13] He F., Zhang J., Yang F., Et al., In vitro degradation and cell response of calcium carbonate composite ceramic in comparison with other synthetic bone substitute materials, Mater Sci Eng C, 50, pp. 257-265, (2015)
  • [14] He F., Ren W., Tian X., Et al., Comparative study on in vivo response of porous calcium carbonate composite ceramic and biphasic calcium phosphate ceramic, Mater Sci Eng C, 64, pp. 117-123, (2016)
  • [15] Li B., Liu Z., Yang J., Et al., Preparation of bioactive β-tricalcium phosphate microspheres as bone graft substitute materials, Mater Sci Eng C, 70, pp. 1200-1205, (2017)
  • [16] Studart A.R., Gonzenbach U.T., Tervoort E., Et al., Processing routes to macroporous ceramics: a review, J Am Ceram Soc, 89, 6, pp. 1771-1789, (2006)
  • [17] Lin W., Tadai O., Takahashi M., Et al., An experimental study on measurement methods of bulk density and porosity of rock samples, J Geosci Environ Protect, 3, 5, pp. 72-79, (2015)
  • [18] Iatsenko A., Sych O., Tomila T., Effect of sintering temperature on structure and properties of highly porous glass-ceramics, Process Appl Ceram, 9, 2, pp. 99-105, (2015)
  • [19] Dorokhova E.S., Zhernovaya N.F., Bessmertnyi V.S., Et al., Control of the structure of porous glass-ceramic material, Glass Ceram, 74, pp. 95-98, (2017)
  • [20] Mocciaro A., Lombardi M.B., Scian A.N., Ceramic material porous structure prepared using pore-forming additives, Refract Ind Ceram, 58, 1, pp. 65-68, (2017)