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用于骨科植入物的含钆和锌元素的生物医学镁低合金的体外和体内研究。

In Vitro and in Vivo Studies on Biomedical Magnesium Low-Alloying with Elements Gadolinium and Zinc for Orthopedic Implant Applications.

机构信息

Department of Materials Science and Engineering, College of Engineering, Peking University , Beijing 100871, China.

Department of Orthopedics, Guangdong Key Lab of Orthopaedic Technology and Implant Materials, Guangzhou General Hospital of Guangzhou Military Command , Guangzhou 510010, China.

出版信息

ACS Appl Mater Interfaces. 2018 Feb 7;10(5):4394-4408. doi: 10.1021/acsami.7b15498. Epub 2018 Jan 23.

DOI:10.1021/acsami.7b15498
PMID:29310434
Abstract

Ternary magnesium alloys with low combined addition of elements gadolinium and zinc were developed in the present work, with their microstructures, mechanical properties, in vitro degradation behaviors, and cytotoxicity being systematically studied. Furthermore, the Mg-1.8Zn-0.2Gd alloy, with the best in vitro performance, was implanted into Sprague Dawley rats to examine its in vivo degradation performance for up to 6 months. It was found that Mg-1.8Zn-0.2Gd, composed of a single α-Mg phase, owned excellent strength and toughness that were comparable to the CE marked MAGNEZIX, the mischmetal added Mg alloy. Owing to the uniform single-phased microstructure, the degradation rate of this alloy was around 0.12 mm/y measured by electrochemical testing, which was comparable to high purity magnesium. Moreover, the Mg-1.8Zn-0.2Gd alloy exhibited no cytotoxicity to L929, MG63, and VSMC cells. In vivo degradation characterized by micro-computed tomography revealed that the Mg-1.8Zn-0.2Gd implant could maintain structural integrity in the first 2 months, and serious degradation could be observed after 6 months. A remarkable 100% survival rate of experimental animals was observed with no negative effects on bone tissues. The implant and the surrounding bone were well integrated within 2 months, implying good biocompatibility and osteoconductivity of the experimental alloy. On the basis of the above findings, the feasibility of Mg-Zn-Gd alloys for use as orthopedic implants was systematically discussed. This study provides a new strategy for development of high-performance Mg-rare earth (RE)-based alloys with superior mechanical properties and corrosion resistance while effectively avoiding the possible standing toxic effect of RE elements.

摘要

本工作开发了低复合添加元素钆和锌的三元镁合金,系统研究了其微观结构、力学性能、体外降解行为和细胞毒性。此外,研究了具有最佳体外性能的 Mg-1.8Zn-0.2Gd 合金,将其植入 Sprague Dawley 大鼠体内,考察其长达 6 个月的体内降解性能。结果表明,Mg-1.8Zn-0.2Gd 由单一的 α-Mg 相组成,具有优异的强度和韧性,可与添加混合稀土的 MAGNEZIX 镁合金 CE 标志媲美。由于均匀的单相微观结构,通过电化学测试测量该合金的降解速率约为 0.12mm/y,与高纯度镁相当。此外,Mg-1.8Zn-0.2Gd 合金对 L929、MG63 和 VSMC 细胞无细胞毒性。微计算机断层扫描(micro-CT)观察到的体内降解表明,Mg-1.8Zn-0.2Gd 植入物在最初的 2 个月内可以保持结构完整性,在 6 个月后可以观察到严重的降解。实验动物的存活率达到了惊人的 100%,没有对骨组织产生负面影响。植入物和周围骨在 2 个月内很好地融合在一起,表明实验合金具有良好的生物相容性和骨引导性。基于上述发现,系统探讨了 Mg-Zn-Gd 合金作为骨科植入物的可行性。本研究为开发具有优异力学性能和耐腐蚀性而有效避免稀土元素潜在毒性的高性能 Mg-RE 基合金提供了新策略。

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