Department of Bioengineering, University of California at Riverside, 900 University Avenue, Riverside, CA 92521, USA.
Nanotechnology. 2013 Sep 20;24(37):375103. doi: 10.1088/0957-4484/24/37/375103. Epub 2013 Aug 23.
Biodegradable magnesium (Mg) and its alloys have many attractive properties (e.g. comparable mechanical properties to cortical bone) for orthopedic implant applications, but they degrade too rapidly in the human body to meet clinical requirements. Nanostructured hydroxyapatite (nHA)/poly(lactic-co-glycolic acid) (PLGA) composite coatings provide synergistic properties for controlling degradation of Mg-based substrates and improving bone-implant integration. In this study, nHA/PLGA composites were spin coated onto Mg-based substrates and the results showed that the nHA/PLGA coatings retained nano-scale features with nHA dispersed in PLGA matrix. In comparison with non-coated Mg, the nHA/PLGA composite coated Mg increased the corrosion potential and decreased the corrosion current in revised simulated body fluid (rSBF). After 24 h of immersion in rSBF, increased calcium phosphate (CaP) deposition and formation of Mg-substituted CaP rosettes were observed on the surface of the nHA/PLGA coated Mg, indicating greater bioactivity. In contrast, no significant CaP was deposited on the PLGA coated Mg. Since both PLGA coating and nHA/PLGA coating showed some degree of delamination from Mg-based substrates during extended immersion in rSBF, the coating processing and properties should be further optimized in order to take full advantage of biodegradable Mg and nHA/PLGA nanocomposites for orthopedic applications.
可生物降解的镁 (Mg) 及其合金具有许多吸引人的特性(例如,与皮质骨相当的机械性能),非常适合骨科植入物应用,但它们在人体中的降解速度过快,无法满足临床要求。纳米结构羟基磷灰石 (nHA)/聚(乳酸-共-乙醇酸)(PLGA)复合涂层为控制 Mg 基基底的降解和改善骨-植入物整合提供了协同性能。在这项研究中,nHA/PLGA 复合材料被旋涂在 Mg 基基底上,结果表明 nHA/PLGA 涂层保留了纳米级特征,nHA 分散在 PLGA 基质中。与未涂层的 Mg 相比,nHA/PLGA 复合涂层的 Mg 提高了腐蚀电位并降低了在修订的模拟体液 (rSBF) 中的腐蚀电流。在 rSBF 中浸泡 24 小时后,在 nHA/PLGA 涂层的 Mg 表面观察到更多的磷酸钙 (CaP) 沉积和形成 Mg 取代的 CaP 玫瑰花结,表明具有更高的生物活性。相比之下,PLGA 涂层的 Mg 上没有明显的 CaP 沉积。由于在 rSBF 中长时间浸泡时,PLGA 涂层和 nHA/PLGA 涂层都在一定程度上从 Mg 基基底上分层,因此为了充分利用可生物降解的 Mg 和 nHA/PLGA 纳米复合材料在骨科中的应用,应进一步优化涂层工艺和性能。