College of Chemistry, Chemical Engineering and Materials Science, Orthopaedic Institute, Soochow University, Suzhou 215000, China.
Department of Biomedical Engineering, National University of Singapore, 117583 Singapore, Singapore.
Int J Mol Sci. 2018 Jun 12;19(6):1746. doi: 10.3390/ijms19061746.
Poly (methyl methacrylate) (PMMA)-based bone cements are the most commonly used injectable orthopedic materials due to their excellent injectability and mechanical properties. However, their poor biocompatibility and excessive stiffness may cause complications such as aseptic implant loosening and stress shielding. In this study, we aimed to develop a new type of partially biodegradable composite bone cement by incorporating magnesium (Mg) microspheres, known as "Mg sacrifices" (MgSs), in the PMMA matrix. Being sensitive to the physiological environment, the MgSs in PMMA could gradually degrade to produce bioactive Mg ions and, meanwhile, result in an interconnected macroporous structure within the cement matrix. The mechanical properties, solidification, and biocompatibility, both in vitro and in vivo, of PMMA⁻Mg bone cement were characterized. Interestingly, the incorporation of Mg microspheres did not markedly affect the mechanical strength of bone cement. However, the maximum temperature upon setting of bone cement decreased. This partially biodegradable composite bone cement showed good biocompatibility in vitro. In the in vivo study, considerable bony ingrowth occurred in the pores upon MgS degradation. Together, the findings from this study indicate that such partially biodegradable PMMA⁻Mg composite may be ideal bone cement for minimally invasive orthopedic surgeries such as vertebroplasty and kyphoplasty.
聚甲基丙烯酸甲酯(PMMA)基骨水泥由于其良好的可注射性和机械性能,是最常用的可注射骨科材料。然而,其较差的生物相容性和过高的刚性可能导致无菌性植入物松动和应力遮挡等并发症。在这项研究中,我们旨在通过在 PMMA 基质中加入镁(Mg)微球,即“Mg 牺牲剂”(MgSs),开发一种新型部分可生物降解的复合骨水泥。MgSs 对生理环境敏感,可逐渐降解产生生物活性 Mg 离子,同时在水泥基质内形成相互连通的大孔结构。对 PMMA-Mg 骨水泥的机械性能、凝固性能和体外、体内生物相容性进行了研究。有趣的是,Mg 微球的加入并没有明显影响骨水泥的机械强度。然而,骨水泥凝固时的最高温度降低了。这种部分可生物降解的复合骨水泥在体外具有良好的生物相容性。在体内研究中,MgS 降解时在孔中发生了大量的骨内生长。综上所述,该研究结果表明,这种部分可生物降解的 PMMA-Mg 复合材料可能是经皮椎体成形术和后凸成形术等微创骨科手术的理想骨水泥。