Li Huanxi, Shan Xingyu, Wang Hongda, Tian Zhimin, He Chunnuo, Zhang Haoqiang
Department of Joint Surgery, the 940th Hospital of Chinese PLA Joint Logistics Support Force, Lanzhou Gansu, 730000, P. R. China.
The First Clinical College of Medicine, Gansu University of Traditional Chinese Medicine, Lanzhou Gansu, 730000, P. R. China.
Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi. 2025 Apr 15;39(4):511-517. doi: 10.7507/1002-1892.202502063.
To review the research progress of strontium (Sr) modified β-tricalcium phosphate composite biomaterials (SrTCP) promoting osteogenesis through immune regulation, and provides reference and theoretical support for the further development and research of SrTCP bone repair materials in bone tissue engineering in the future.
The literature about SrTCP promoting osteogenesis through immune regulation at home and abroad in recent years was extensively reviewed, and the preparation methods, immune mechanism and application of promoting osteogenesis were summarized and analyzed.
The preparation methods of SrTCP include solid-state reaction sintering method, solution combustion quenching method, direct doping method, ion substitution method, . SrTCP has immune regulatory effects, which can play an immune regulatory role in inducing macrophage polarization, inducing angiogenesis and anti oxidative stress to promote osteogenesis.
At present, studies have shown that SrTCP can promote bone defect repair through immune regulation. Subsequent studies can start from the control of the optimal repair concentration and release rate of Sr, and further clarify the specific mechanism of SrTCP in promoting angiogenesis and anti oxidative stress, which is helpful to develop new materials for bone defect repair.
综述锶(Sr)修饰的β-磷酸三钙复合生物材料(SrTCP)通过免疫调节促进成骨的研究进展,为未来SrTCP骨修复材料在骨组织工程中的进一步开发和研究提供参考和理论支持。
广泛查阅近年来国内外关于SrTCP通过免疫调节促进成骨的文献,总结分析其制备方法、免疫机制及促进成骨的应用情况。
SrTCP的制备方法包括固态反应烧结法、溶液燃烧淬火法、直接掺杂法、离子置换法等。SrTCP具有免疫调节作用,可在诱导巨噬细胞极化、诱导血管生成和抗氧化应激等方面发挥免疫调节作用以促进成骨。
目前研究表明,SrTCP可通过免疫调节促进骨缺损修复。后续研究可从Sr的最佳修复浓度及释放速率调控入手,进一步阐明SrTCP在促进血管生成和抗氧化应激方面的具体机制,有助于开发新型骨缺损修复材料。