Jiang Hongfeng, Wang Jingbo, Chen Minfang, Liu Debao
Department of Spine Surgery, Tianjin Hospital, 300211 Tianjin, China.
Department of Trauma Surgery, Tianjin Hospital, 300211 Tianjin, China.
Mater Sci Eng C Mater Biol Appl. 2017 Jun 1;75:1068-1074. doi: 10.1016/j.msec.2017.03.019. Epub 2017 Mar 6.
To explore the biodegradable characteristics and biological properties, which could promote new bone formation, of MgF coated magnesium alloy (Mg-3wt%Zn-0.5wt%Zr) in rabbits.
Magnesium alloy with MgF coating was made and the MgF/Mg-Zn-Zr was implanted in the femoral condyle of rabbits. Twelve healthy adult Japanese white rabbits in weight of 2.8-3.2kg were averagely divided into A(Mg-Zn-Zr) group and B(MgF/MgZn-Zr) group. Indexes such as microstructural evolution, SEM scan, X-ray, Micro-CT and mechanical properties were observed and detected at 1th day, 2th, 4th, 8th, 12th, 24th week after implantation.
Low-density regions occurred around the cancellous bone, and the regions gradually expanded during the 12weeks after implantation. The implant was gradually absorbed from 12 to 24weeks. The density of surrounding cancellous bone increased compared with the 12th week data. The degradation rate of B group was lower than that of A group (P<0.01), while the density of the surrounding cancellous bone increased more evenly. In B group, SEM images after 12weeks showed the rich bone tissues on the alloy surface that were attached by active fibers. Micro-CT also presented alloy residue potholes on the surfaces of alloy combinated with bone tissues. Additionally, the trabecular bone had relatively integrated structures with surrounding cavities.
MgF can effectively decrease the degradation rate of Mg-Zn-Zr in vivo. Mg-Zn-Zr coated with MgF can effectively inhibit the corrosion, and delay the release of magnesium ions. The biological properties of the coating itself presented good biocompatibility and bioactivity.
探讨氟化镁涂层镁合金(Mg-3wt%Zn-0.5wt%Zr)在兔体内的生物降解特性及促进新骨形成的生物学性能。
制备含MgF涂层的镁合金,并将MgF/Mg-Zn-Zr植入兔股骨髁。将12只体重2.8-3.2kg的健康成年日本白兔平均分为A(Mg-Zn-Zr)组和B(MgF/MgZn-Zr)组。在植入后第1天、第2、4、8、12、24周观察并检测微观结构演变、扫描电子显微镜(SEM)扫描、X射线、显微CT及力学性能等指标。
植入后12周内,松质骨周围出现低密度区域,且该区域逐渐扩大。植入物在12至24周逐渐被吸收。与第12周数据相比,周围松质骨密度增加。B组降解率低于A组(P<0.01),且周围松质骨密度增加更均匀。B组12周后的SEM图像显示合金表面有丰富的骨组织,且有活性纤维附着。显微CT也显示合金与骨组织结合表面有合金残留凹坑。此外,小梁骨与周围腔隙结构相对完整。
MgF可有效降低Mg-Zn-Zr在体内的降解率。MgF涂层的Mg-Zn-Zr能有效抑制腐蚀,延缓镁离子释放。涂层本身的生物学性能表现出良好的生物相容性和生物活性。