Bai Chuan-Yi, Li Jian-Wu, Ta Wan-Bao, Li Bo, Han Yong
Department of Orthopaedic Surgery, The Second Affiliated Hospital of Xi'an Jiaotong University, Xi'an, China.
Department of Orthopaedic Surgery, Armed Police Corps Hospital of Shaanxi, Xi'an, China.
Orthop Surg. 2017 Aug;9(3):296-303. doi: 10.1111/os.12342.
To study the corrosion behavior of magnesium alloy surface treated with micro-arc oxidation and hydrothermal deposition in living animals.
A magnesium oxide (MgO) layer was prepared on Mg alloy using micro-arc oxidation technology, and then a composite coating composed of magnesium hydroxide, hydroxyapatite, and MgO was coated on the MgO layer using the hydrothermal deposition method for 2 h and 24 h. Male 3-month-old white New Zealand rabbits (n = 48) weighting 2200-2300 g, were divided into four groups randomly. The prepared Mg alloy samples with composite coatings were implanted into the femoral medullary cavity of rabbits. For the Mg group, bare Mg samples without any treatment were implanted; for the MgO group, bare Mg samples undergoing MAO treatment were implanted; for the HT2h group, samples of the MgO group undergoing hydrothermal treatment (HT) for 2 h were implanted; and for the HT24h group, samples of group MgO undergoing HT for 24 h were implanted. Then the in vivo corrosion behaviors of implants were evaluated by X-ray observation, micro-CT analysis and serum Mg examination.
The X-ray showed that samples implanted in animals were decreased as time went by. The micro-CT showed that on the fourth week, the residual volume percentages (RVP) of samples of the Mg, MgO, HT2h, and HT24h groups were 72.81% ± 2.10%, 71.68% ± 1.49%, 81.14% ± 1.54%, and 82.04% ± 0.89%, respectively; on the eighth week, the RVP of four groups were 29.45% ± 1.06%, 41.82% ± 1.13%, 53.92% ± 0.37%, and 62.53% ± 2.06%, respectively; while on the 12th week, RVP were 8.45% ± 0.49%, 9.97% ± 0.75%, 37.09% ± 0.89%, 46.71% ± 1.87%. The RVP of the HT2h group and the HT24h group were higher than for the Mg group and the MgO group for all three time points (P < 0.05); the RVP for HT24h was higher than for HT2h at 8 and 12 weeks, and the differences were significant, indicating that the degradation of Mg alloy slowed down after composite coating. In addition, the composite-coated Mg alloy by 24-h hydrothermal treatment exhibited a slower degradation than that treated by 2 h. Serum Mg concentration results showed that on the second week, the Mg concentrations of the Mg, MgO, HT2h, and HT24h groups were 2.24 ± 0.10 mmol/L, 2.12 ± 0.07 mmol/L, 2.06 ± 0.11 mmol/L, and 2.15 ± 0.12 mmol/L, respectively. On the fourth week, these concentrations were 1.99 ± 0.33 mmol/L, 2.18 ± 0.06 mmol/L, 2.17 ± 0.09 mmol/L, and 2.13 ± 0.14 mmol/L, respectively. On the eighth week, the concentrations were 2.22 ± 0.09 mmol/L, 2.20 ± 0.17 mmol/L, 2.06 ± 0.11 mmol/L, and 2.14 ± 0.07 mmol/L, respectively. On the 12th week, the concentrations were 2.18 ± 0.04 mmol/L, 2.20 ± 0.08 mmol/L, 2.09 ± 0.02 mmol/L, and 2.16 ± 0.11 mmol/L.
The combination of micro-arc oxidation and hydrothermal deposition can greatly improve the anti-corrosion behavior of Mg alloy, and Mg alloy coated with this composite coating is a promising biomaterial with a satisfactory degradation rate.
研究经微弧氧化和水热沉积处理的镁合金在活体动物中的腐蚀行为。
采用微弧氧化技术在镁合金表面制备氧化镁(MgO)层,然后采用水热沉积法在MgO层上涂覆由氢氧化镁、羟基磷灰石和MgO组成的复合涂层2小时和24小时。将3个月大、体重2200 - 2300克的雄性新西兰白兔(n = 48)随机分为四组。将制备好的带有复合涂层的镁合金样品植入兔股骨髓腔。Mg组植入未经任何处理的裸镁样品;MgO组植入经微弧氧化处理的裸镁样品;HT2h组植入MgO组经2小时水热(HT)处理的样品;HT24h组植入MgO组经24小时水热(HT)处理的样品。然后通过X射线观察、显微CT分析和血清镁检测评估植入物的体内腐蚀行为。
X射线显示植入动物体内的样品随时间减少。显微CT显示,在第四周,Mg、MgO、HT2h和HT24h组样品的残余体积百分比(RVP)分别为72.81% ± 2.10%、71.68% ± 1.49%、81.14% ± 1.54%和82.04% ± 0.89%;在第八周,四组的RVP分别为29.45% ± 1.06%、41.82% ± 1.13%、53.92% ± 0.37%和62.53% ± 2.06%;而在第十二周,RVP分别为8.45% ± 0.49%、9.97% ± 0.75%、37.09% ± 0.89%、46.71% ± 1.87%。在所有三个时间点,HT2h组和HT24h组的RVP均高于Mg组和MgO组(P < 0.05);在第8周和第12周,HT24h组的RVP高于HT2h组,差异显著,表明复合涂层后镁合金的降解减缓。此外,经24小时水热治疗的复合涂层镁合金的降解速度比经2小时治疗的慢。血清镁浓度结果显示,在第二周,Mg、MgO、HT2h和HT24h组的镁浓度分别为2.24 ± 0.10 mmol/L、2.12 ± 0.07 mmol/L、2.06 ± 0.11 mmol/L和2.15 ± 0.12 mmol/L。在第四周,这些浓度分别为1.99 ± 0.33 mmol/L、2.18 ± 0.06 mmol/L、2.17 ± 0.09 mmol/L和2.13 ± 0.14 mmol/L。在第八周,浓度分别为2.22 ± 0.09 mmol/L、2.20 ± 0.17 mmol/L、2.06 ± 0.11 mmol/L和2.14 ± 0.07 mmol/L。在第十二周,浓度分别为2.18 ± 0.04 mmol/L、2.20 ± 0.08 mmol/L、2.09 ± 0.02 mmol/L和2.16 ± 0.11 mmol/L。
微弧氧化和水热沉积相结合可大大提高镁合金的抗腐蚀性能,涂覆这种复合涂层的镁合金是一种具有令人满意降解速率的有前景的生物材料。