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用于骨植入应用的生物医学镁钙合金的体外和体内评估。

In vitro and in vivo assessment of biomedical Mg-Ca alloys for bone implant applications.

作者信息

Makkar Preeti, Sarkar Swapan Kumar, Padalhin Andrew R, Moon Byoung-Gi, Lee Young Seon, Lee Byong Taek

机构信息

1 Institute of Tissue Regeneration, College of Medicine, Soonchunhyang University, Cheonan, South Korea.

2 Department of Regenerative Medicine, College of Medicine, Soonchunhyang University, Cheonan, South Korea.

出版信息

J Appl Biomater Funct Mater. 2018 Jul;16(3):126-136. doi: 10.1177/2280800017750359. Epub 2018 Apr 2.

Abstract

BACKGROUND

Magnesium (Mg)-based alloys are considered to be promising materials for implant application due to their excellent biocompatibility, biodegradability, and mechanical properties close to bone. However, low corrosion resistance and fast degradation are limiting their application. Mg-Ca alloys have huge potential owing to a similar density to bone, good corrosion resistance, and as Mg is essential for Ca incorporation into bone. The objective of the present work is to determine the in vitro degradation and in vivo performance of binary Mg- xCa alloy ( x = 0.5 or 5.0 wt%) to assess its usability for degradable implant applications.

METHODS

Microstructural evolutions for Mg- xCa alloys were characterized by optical, SEM, EDX, and XRD. In vitro degradation tests were conducted via immersion test in phosphate buffer saline solution. In vivo performance in terms of interface, biocompatibility, and biodegradability of Mg- xCa alloys was examined by implanting samples into rabbit femoral condyle for 2 and 4 weeks.

RESULTS

Microstructural results showed the enhancement in intermetallic MgCa phase with increase in Ca content. Immersion tests revealed that the dissolution rate varies linearly, with Ca content exhibiting more hydrogen gas evolution, increased pH, and higher degradation for Mg-5.0Ca alloy. In vivo studies showed good biocompatibility with enhanced bone formation for Mg-0.5Ca after 4 weeks of implantation compared with Mg-5.0Ca alloy. Higher initial corrosion rate with prolonged inflammation and rapid degradation was noticed in Mg-5.0Ca compared with Mg-0.5Ca alloy.

CONCLUSIONS

The results suggest that Mg-0.5Ca alloy could be used as a temporary biodegradable implant material for clinical applications owing to its controlled in vivo degradation, reduced inflammation, and high bone-formation capability.

摘要

背景

镁基合金因其优异的生物相容性、生物可降解性以及与骨相近的力学性能,被认为是具有应用前景的植入材料。然而,其耐腐蚀性低和降解速度快限制了它们的应用。镁钙合金具有巨大潜力,因为其密度与骨相似,耐腐蚀性良好,且镁对于钙融入骨中至关重要。本研究的目的是确定二元镁 - x钙合金(x = 0.5 或 5.0 wt%)的体外降解和体内性能,以评估其在可降解植入应用中的适用性。

方法

通过光学显微镜、扫描电子显微镜(SEM)、能谱仪(EDX)和X射线衍射仪(XRD)对镁 - x钙合金的微观结构演变进行表征。通过在磷酸盐缓冲盐溶液中进行浸泡试验来进行体外降解测试。将样品植入兔股骨髁2周和4周,以检查镁 - x钙合金在界面、生物相容性和生物可降解性方面的体内性能。

结果

微观结构结果表明,随着钙含量的增加,金属间MgCa相有所增强。浸泡试验表明,溶解速率呈线性变化,镁 - 5.0钙合金的钙含量表现出更多的氢气析出、pH值升高和更高的降解率。体内研究表明,与镁 - 5.0钙合金相比,植入4周后,镁 - 0.5钙合金具有良好的生物相容性,骨形成增强。与镁 - 0.5钙合金相比,镁 - 5.0钙合金的初始腐蚀速率更高,炎症持续时间更长,降解更快。

结论

结果表明,镁 - 0.5钙合金因其体内降解可控、炎症减轻和骨形成能力高,可作为临床应用的临时可生物降解植入材料。

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