Chang Yen-Hao, Tseng Chun Chieh, Chao Chih-Yeh, Chen Chung-Hwan, Lin Sung-Yen, Du Je-Kang
School of Dentistry, College of Dental Medicine, Kaohsiung Medical University, Kaohsiung 80708, Taiwan.
Combination Medical Device Technology Division, Medical Devices and Opto-Electronics Equipment Department, Metal Industries Research & Development Centre, Lujhu Township, Kaohsiung 82151, Taiwan.
Materials (Basel). 2020 Jul 7;13(13):3039. doi: 10.3390/ma13133039.
To control the degradation rate of magnesium (Mg) alloys, chitosan (CHI) and L-glutamic acid (LGA) were used as coatings on Mg-Zn-Ca alloys via dip coating. In this study, either two or seven CHI/LGA layers were applied as a coating on Mg-2.8Zn-0.8Ca alloy (ZX31) and Mg-2.8Zn-0.8Ca hemostasis clips (ZX31 clips). The morphologies, compositions, and surface roughness of the specimens were characterized via scanning electron microscopy, Fourier transform infrared spectroscopy, and surface measurement devices. The degradation rates and behavior of the specimens were evaluated by immersing them in simulated body fluids and by applying these ZX31 clips on rabbits' uterine tubes for five weeks. The specimen with seven layers (ZX31(CHI/LGA)) exhibited improved corrosion behavior when compared with ZX31 or ZX31(CHI/LGA), with a reduced degradation rate of the Mg alloy in a simulated body environment. In vivo experiments showed that ZX31 clips exhibited good biocompatibilities in each group but could not maintain the clamping function for five weeks. The weight loss of ZX31(CHI/LGA) was significantly lower than that of the other groups. Consequently, it was verified that CHI can be used as a protective layer on a magnesium alloy surface via in vitro and in vivo experiments.
为了控制镁(Mg)合金的降解速率,通过浸涂法将壳聚糖(CHI)和L-谷氨酸(LGA)用作Mg-Zn-Ca合金的涂层。在本研究中,在Mg-2.8Zn-0.8Ca合金(ZX31)和Mg-2.8Zn-0.8Ca止血夹(ZX31夹)上涂覆了两层或七层CHI/LGA作为涂层。通过扫描电子显微镜、傅里叶变换红外光谱和表面测量装置对试样的形貌、成分和表面粗糙度进行了表征。通过将试样浸泡在模拟体液中以及将这些ZX31夹应用于兔子的输卵管五周来评估试样的降解速率和行为。与ZX31或ZX31(CHI/LGA)相比,具有七层的试样(ZX31(CHI/LGA))表现出改善的腐蚀行为,在模拟体内环境中镁合金的降解速率降低。体内实验表明,ZX31夹在每组中均表现出良好的生物相容性,但不能维持五周的夹紧功能。ZX31(CHI/LGA)的重量损失明显低于其他组。因此,通过体外和体内实验验证了CHI可作为镁合金表面的保护层。