Liu Qiaoyun, Liu Changjiang, Wang Weixing, Yuan Liangjie, Wang Yu, Yi Xinzeyu, Pan Zhenyu, Yu Aixi
Department of Orthopedics Trauma and Microsurgery, Zhongnan Hospital of Wuhan University, Wuhan, Hubei, China.
College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, Hubei, China.
Front Bioeng Biotechnol. 2023 Feb 3;11:1142095. doi: 10.3389/fbioe.2023.1142095. eCollection 2023.
Bioinspired strontium magnesium phosphate cements for bone tissue engineering were prepared using a new, facile, environmentally friendly and high yielding (98.5%) precursor method. The bioinspired SMPCs have uniform particle distributions, excellent mechanical strengths and high biocompatibilities. The responses of bone marrow stromal cells to the SMPCs, including viability, osteogenic differentiation and alkaline phosphatase activity, were evaluated. The results show that the SMPC containing 0.5 mol of strontium (referred to as SMPC-2) has a higher degradation rate and biological activity than magnesium phosphate cements and the other SMPCs. In addition, the synergistic effect of strontium and magnesium ion release from SMPC-2 creates a conducive environment for cell proliferation, mineralized calcium deposition and new bone formation. These observations demonstrate the feasibility of using the new precursor method to generate SMPCs and the utility of these biologically compatible and highly effective cements for bone tissue engineering.
采用一种新型、简便、环保且产率高(98.5%)的前驱体法制备了用于骨组织工程的仿生磷酸锶镁水泥。这种仿生磷酸锶镁水泥具有均匀的颗粒分布、优异的机械强度和高生物相容性。评估了骨髓基质细胞对磷酸锶镁水泥的反应,包括活力、成骨分化和碱性磷酸酶活性。结果表明,含有0.5摩尔锶的磷酸锶镁水泥(称为SMPC - 2)比磷酸镁水泥和其他磷酸锶镁水泥具有更高的降解速率和生物活性。此外,SMPC - 2中锶和镁离子释放的协同效应为细胞增殖、矿化钙沉积和新骨形成创造了有利环境。这些观察结果证明了使用新前驱体法制备磷酸锶镁水泥的可行性以及这些生物相容性好且高效的水泥在骨组织工程中的实用性。