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贻贝启发的可生物降解AZ31镁合金上PEO/PCL复合涂层的功能化处理

Mussel-inspired functionalization of PEO/PCL composite coating on a biodegradable AZ31 magnesium alloy.

作者信息

Tian Peng, Xu Demin, Liu Xuanyong

机构信息

State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, PR China.

Zhongshan Hospital, Fudan University, Shanghai 200032, PR China.

出版信息

Colloids Surf B Biointerfaces. 2016 May 1;141:327-337. doi: 10.1016/j.colsurfb.2016.02.004. Epub 2016 Feb 4.

Abstract

The rapid degradation of magnesium-based implants in physiological environments in vivo not only will quickly deteriorate their mechanical strengths but will also lead to a severe change of the micro-environment around the implants, which may cause the final failure of magnesium-based implants. In this work, a polycaprolactone (PCL) layer was prepared to seal the plasma electrolytic oxidization coating (PEO) to form a PEO/PCL composite coating on a biodegradable AZ31 magnesium alloy, followed by further surface functionalization with polydopamine. The in vitro degradation behaviors of the bare AZ31 alloy and coated samples were evaluated in a simulated body fluid (SBF) using the potentiodynamic polarization curve test and the static immersion test. The bioactivity of the samples was investigated using the SBF soaking test. The cytocompatibility of all samples was evaluated using the cytotoxicity test and analysis of the adhesion and proliferation of osteoblast cells (MC3T3-E1) directly cultivated on the sample surface. The results showed that the PCL layer successfully sealed the pores of the PEO coating, and then the polydopamine layer formed on its surface. The in vitro degradation tests showed that the PEO/PCL composite coating improved the corrosion resistance of the AZ31 alloy in SBF with a more positive corrosion potential and a lower corrosion current density. Due to the protection of the PEO/PCL composite coating, the surrounding environment showed nearly no influence on the degradation of the coated sample, which led to no obvious local alkalization and hydrogen evolution. Moreover, compared with the AZ31 alloy and PEO coating, the PEO/PCL composite coating was more suitable for cell adhesion and proliferation. After further surface functionalization by polydopamine, the corrosion resistance of the composite coating was maintained, while its bioactivity was significantly enhanced with a large amount of hydroxyapatite (HA) formed on its surface after immersion in SBF. The initial cell adhesion and spread were also improved by the polydopamine. By further immobilizing polyhexamethylene biguanidine (PHMB) onto the coating surface via the assistance of polydopamine, good antibacterial ability was obtained. This feasible method for fabricating a cytocompatible and antibacterial composite coating on a biodegradable AZ31 alloy may be promising in implant applications due to the osteointegration and anti-infection properties of these materials post operation.

摘要

镁基金属植入物在体内生理环境中迅速降解,不仅会使其机械强度迅速下降,还会导致植入物周围微环境发生剧烈变化,这可能会导致镁基金属植入物最终失效。在本研究中,制备了聚己内酯(PCL)层来密封微弧氧化涂层(PEO),从而在可生物降解的AZ31镁合金上形成PEO/PCL复合涂层,随后用聚多巴胺进行进一步的表面功能化处理。采用动电位极化曲线测试和静态浸泡试验,在模拟体液(SBF)中评估了裸AZ31合金和涂层样品的体外降解行为。通过SBF浸泡试验研究了样品的生物活性。采用细胞毒性试验以及对直接培养在样品表面的成骨细胞(MC3T3-E1)的粘附和增殖情况进行分析,评估了所有样品的细胞相容性。结果表明,PCL层成功地封闭了PEO涂层的孔隙,随后在其表面形成了聚多巴胺层。体外降解试验表明,PEO/PCL复合涂层提高了AZ31合金在SBF中的耐腐蚀性,具有更正的腐蚀电位和更低的腐蚀电流密度。由于PEO/PCL复合涂层的保护作用,周围环境对涂层样品的降解几乎没有影响,这导致没有明显的局部碱化和析氢现象。此外,与AZ31合金和PEO涂层相比,PEO/PCL复合涂层更适合细胞的粘附和增殖。在通过聚多巴胺进行进一步的表面功能化处理后,复合涂层的耐腐蚀性得以保持,同时其生物活性显著增强,在浸泡于SBF后其表面形成了大量的羟基磷灰石(HA)。聚多巴胺还改善了细胞的初始粘附和铺展情况。通过聚多巴胺的辅助,将聚六亚甲基双胍(PHMB)进一步固定在涂层表面,获得了良好的抗菌能力。这种在可生物降解的AZ31合金上制备具有细胞相容性和抗菌性复合涂层的可行方法,由于这些材料在术后具有骨整合和抗感染特性,在植入应用中可能具有广阔的前景。

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