Li Bo, Liu Zhongning, Yang Jingwen, Yi Zhongchao, Xiao Wenqian, Liu Xue, Yang Xiaoling, Xu Wenfeng, Liao Xiaoling
Institute of Biomaterials and Living Cell Imaging Technology, Chongqing Key Laboratory of Nano/Micro Composite Materials and Devices, Chongqing University of Science and Technology, Chongqing 401331, China.
Department of Prosthodontics, Peking University School and Hospital of Stomatology, Beijing 100081, China.
Mater Sci Eng C Mater Biol Appl. 2017 Jan 1;70(Pt 2):1200-1205. doi: 10.1016/j.msec.2016.03.040. Epub 2016 Mar 23.
In this study, β-tricalcium phosphate (CaPO, β-TCP) microspheres with different diameters were fabricated via a solid-in-oil-in-water (S/O/W) emulsion method. After soaking in simulated body fluid (SBF), the fabricated β-TCP microspheres were fully covered with a new bone-like apatite layer; subsequent analysis suggested that the microspheres have excellent bioactivity properties, specifically in inducing apatite deposition. The calcium release profiles of the microspheres were tested in pH7.4 Tris-HCl buffer, and results demonstrated that the Ca continually released from microspheres during the two-week test period. We then co-cultured bone marrow stem cells (BMSCs) in vitro with β-TCP microspheres, and performed SEM and confocal microscope analyses to find that β-TCP microspheres efficiently promoted BMSC attachment and bone-related gene expression. The co-cultured BMSCs and microspheres were successfully implanted subcutaneously into nude mice for 8weeks. The H&E neo-tissue staining results showed that abundant new bone-like structures had formed between the β-TCP microspheres, implying that β-TCP microspheres used as a cell carrier and bone graft substitute material show highly promising potential application for irregular-shaped bone defect regeneration.
在本研究中,通过水包油包固(S/O/W)乳液法制备了不同直径的β-磷酸三钙(CaPO,β-TCP)微球。将制备的β-TCP微球浸泡在模拟体液(SBF)中后,其表面完全覆盖了一层新的类骨磷灰石层;后续分析表明,这些微球具有优异的生物活性特性,特别是在诱导磷灰石沉积方面。在pH7.4的Tris-HCl缓冲液中测试了微球的钙释放曲线,结果表明在为期两周的测试期内,钙持续从微球中释放出来。然后,我们将骨髓干细胞(BMSCs)与β-TCP微球进行体外共培养,并进行扫描电子显微镜(SEM)和共聚焦显微镜分析,发现β-TCP微球能有效促进BMSC的附着和骨相关基因的表达。将共培养的BMSCs和微球成功皮下植入裸鼠体内8周。苏木精-伊红(H&E)新组织染色结果显示,在β-TCP微球之间形成了大量新的类骨结构,这意味着β-TCP微球作为细胞载体和骨移植替代材料在不规则形状骨缺损再生方面具有极具潜力的应用前景。