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仿生涂层控制镁的腐蚀和生物相容性。

Control of magnesium corrosion and biocompatibility with biomimetic coatings.

机构信息

Institute of Surface Science and Corrosion, Department of Materials Science and Engineering (WW-4), University of Erlangen-Nuremberg, Erlangen, Germany.

出版信息

J Biomed Mater Res B Appl Biomater. 2011 Jan;96(1):84-90. doi: 10.1002/jbm.b.31742.

Abstract

The use of magnesium and its alloys as biodegradable metallic implant materials requires that their corrosion behavior can be controlled. We tailored the Mg release kinetics and cell adhesion properties of commercially pure Mg by chemical surface treatments in simulated body fluid, in Dulbecco's Modified Eagle's cell culture medium in the presence or absence of fetal bovine serum (FBS), or in 100% FBS. HeLa cells were cultured for 24 h on these Mg surfaces to characterize their biocompatibility. Cell density on all treated surfaces was significantly increased compared with a polished Mg surface, where almost no cells survived. This low biocompatibility of pure Mg was not caused by the high Mg ion release with concentrations of up to 300 mg/L in the cell culture medium after 24 h, as cells grown on a glass substrate showed no adverse reactions to high Mg ion concentrations. Rather, the most critical factor for cell adhesion was a sufficiently reduced initial dissolution rate of the surface. A comparison among all surface treatments showed that an incubation of the Mg samples in cell culture medium gave the lowest dissolution rate and resulted in the best cell adhesion and spreading behavior.

摘要

将镁及其合金作为可生物降解的金属植入材料使用,需要控制其腐蚀行为。我们通过在模拟体液、含或不含胎牛血清(FBS)的 Dulbecco 改良 Eagle 细胞培养基中以及 100% FBS 中进行化学表面处理,来调整纯镁的镁释放动力学和细胞黏附特性。我们将 HeLa 细胞在这些镁表面上培养 24 小时,以表征其生物相容性。与抛光镁表面相比,所有处理过的表面上的细胞密度都显著增加,而在抛光镁表面上几乎没有细胞存活。纯镁的这种低生物相容性并不是由于镁离子释放浓度高达 300mg/L 所致,因为在细胞培养基中培养的玻璃基质上的细胞对高镁离子浓度没有不良反应。相反,细胞黏附的最关键因素是表面初始溶解速率足够低。对所有表面处理的比较表明,将镁样品在细胞培养基中孵育可获得最低的溶解速率,并可获得最佳的细胞黏附和铺展行为。

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