Bai Jianzhong, Liu Dachuan, Ding Luguang, Liu Guoping, Li Jiaying, Wang Huan, Dong Li, Cui Chen, Hong Youzhi, He Shuangjian, Chen Song, Zhang Hongtao
Department of Orthopedic Surgery, Medical 3D Printing Center, Orthopedic Institute, The First Affiliated Hospital, Suzhou Medical College, Soochow University, Suzhou, Jiangsu, PR China.
The Affiliated Suzhou Hospital of Nanjing University Medical School, Suzhou, PR China.
J Mater Sci Mater Med. 2025 Jul 29;36(1):61. doi: 10.1007/s10856-025-06911-5.
The critical bone defect is a common clinical challenge worldwide, characterized by long recovery times, a substantial risk of infection, and high disability rates. There remains a significant demand for synthetic bone-repairing materials to address this issue. In this study, porous monetite was synthesized through the reaction between monocalcium phosphate monohydrate and β-tricalcium phosphate, using paraffin microspheres as pore-forming agents. An injectable biphasic cement was then developed by blending the monetite granules with hemihydrate calcium sulfate, designed for minimally invasive surgical applications. The cement demonstrated excellent biocompatibility and osteogenic properties in vitro. Furthermore, in vivo studies confirmed the cement's superior bone repair capabilities, indicating its promising potential for the treatment of critical bone defects.
严重骨缺损是全球常见的临床挑战,其特点是恢复时间长、感染风险大、致残率高。目前仍迫切需要合成骨修复材料来解决这一问题。在本研究中,以石蜡微球为成孔剂,通过一水磷酸二氢钙与β-磷酸三钙反应合成了多孔透钙磷石。然后将透钙磷石颗粒与半水硫酸钙混合,研制出一种可注射双相骨水泥,用于微创外科手术。该骨水泥在体外表现出优异的生物相容性和成骨性能。此外,体内研究证实了该骨水泥具有卓越的骨修复能力,表明其在治疗严重骨缺损方面具有广阔的应用前景。