Zhang Jianhua, Zhao Shichang, Zhu Yufang, Huang Yinjun, Zhu Min, Tao Cuilian, Zhang Changqing
School of Medical Instrument and Food Engineering, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, People's Republic of China; School of Materials Science and Engineering, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, People's Republic of China.
Department of Orthopaedics, Shanghai Sixth People's Hospital, Shanghai Jiaotong University, 600 Yishan Road, Shanghai 200233, People's Republic of China.
Acta Biomater. 2014 May;10(5):2269-81. doi: 10.1016/j.actbio.2014.01.001. Epub 2014 Jan 10.
In this study, we fabricated strontium-containing mesoporous bioactive glass (Sr-MBG) scaffolds with controlled architecture and enhanced mechanical strength using a three-dimensional (3-D) printing technique. The study showed that Sr-MBG scaffolds had uniform interconnected macropores and high porosity, and their compressive strength was ∼170 times that of polyurethane foam templated MBG scaffolds. The physicochemical and biological properties of Sr-MBG scaffolds were evaluated by ion dissolution, apatite-forming ability and proliferation, alkaline phosphatase activity, osteogenic expression and extracelluar matrix mineralization of osteoblast-like cells MC3T3-E1. The results showed that Sr-MBG scaffolds exhibited a slower ion dissolution rate and more significant potential to stabilize the pH environment with increasing Sr substitution. Importantly, Sr-MBG scaffolds possessed good apatite-forming ability, and stimulated osteoblast cells' proliferation and differentiation. Using dexamethasone as a model drug, Sr-MBG scaffolds also showed a sustained drug delivery property for use in local drug delivery therapy, due to their mesoporous structure. Therefore, the 3-D printed Sr-MBG scaffolds combined the advantages of Sr-MBG such as good bone-forming bioactivity, controlled ion release and drug delivery and enhanced mechanical strength, and had potential application in bone regeneration.
在本研究中,我们使用三维(3-D)打印技术制备了具有可控结构和增强机械强度的含锶介孔生物活性玻璃(Sr-MBG)支架。研究表明,Sr-MBG支架具有均匀互连的大孔和高孔隙率,其抗压强度约为聚氨酯泡沫模板化MBG支架的170倍。通过离子溶解、成骨能力以及成骨样细胞MC3T3-E1的增殖、碱性磷酸酶活性、成骨表达和细胞外基质矿化来评估Sr-MBG支架的物理化学和生物学特性。结果表明,随着Sr取代量的增加,Sr-MBG支架表现出较慢的离子溶解速率和更显著的稳定pH环境的潜力。重要的是,Sr-MBG支架具有良好的成磷灰石能力,并能刺激成骨细胞的增殖和分化。以地塞米松为模型药物,由于其介孔结构,Sr-MBG支架在局部药物递送治疗中也表现出持续的药物递送特性。因此,3-D打印的Sr-MBG支架结合了Sr-MBG的优点,如良好的成骨生物活性、可控的离子释放和药物递送以及增强的机械强度,在骨再生方面具有潜在应用价值。