Advanced Materials Laboratory, Department of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
J Biomater Appl. 2012 Aug;27(2):153-64. doi: 10.1177/0885328211398161. Epub 2011 Mar 1.
This study is conducted to investigate the biocompatibility and biodegradation behavior of calcium phosphate-coated Mg alloy in vivo. Calcium phosphate (Ca-P) was coated on the Mg alloy (AZ31) by a chemical process. Samples of Ca-P coated rods, the naked alloy rods, and degradable polymer as controls were implanted into the thighbone of rabbits to investigate the bone response at the early stage. The reduction in implant volume was determined by micro-computed tomography and three-dimensional reconstruction of the remaining Mg alloy segmented from the bone matrix. It was observed that the biodegradation rate of naked Mg implant is faster than that of the coated ones. The bone-implant interface was characterized in sections by scanning electron microscopy with energy-dispersive spectroscopy. Biodegradation or reaction layer was formed on the surface of Mg alloy implants and direct contact with the surrounding bone. The layer was mainly composed of Ca, P, O, and Mg. After 8 weeks of post-operation, paraffin sections were generated for histomorphologic analysis; 100% implants were fixed and no inflammation was observed. Histological analysis showed that new bone tissue is formed around the Mg implants, and no fibrous capsule was found. Blood examination showed that the biodegradation of the Mg implant caused little change to blood composition. Ca-P coating on Mg alloy substrate might be an effective method to reduce the biodegradation rate of Mg alloy in vivo and improve the surface bioactivity of Mg alloy implants.
本研究旨在研究磷酸钙涂层镁合金在体内的生物相容性和生物降解行为。通过化学方法在镁合金(AZ31)上涂覆磷酸钙(Ca-P)。将 Ca-P 涂层棒、裸露合金棒和可降解聚合物作为对照样本植入兔大腿骨中,以研究早期的骨反应。通过微计算机断层扫描和从骨基质中分段的剩余 Mg 合金的三维重建来确定植入物体积的减少。观察到裸露 Mg 植入物的降解速度快于涂层的。通过扫描电子显微镜和能量色散光谱对植入物表面进行了截面特征分析。在 Mg 合金植入物表面形成了生物降解或反应层,并与周围骨骼直接接触。该层主要由 Ca、P、O 和 Mg 组成。术后 8 周,制作石蜡切片进行组织形态学分析;100%的植入物被固定,没有观察到炎症。组织学分析表明,在 Mg 植入物周围形成了新的骨组织,没有发现纤维囊。血液检查表明,Mg 植入物的生物降解对血液成分几乎没有影响。在 Mg 合金基体上涂覆 Ca-P 可能是一种有效降低 Mg 合金在体内降解速度和提高 Mg 合金植入物表面生物活性的方法。