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作为临时植入材料的非晶态 Mg72Zn23Ca5 和晶态 Mg70Zn23Ca5Pd2 合金的生物降解性、力学性能和细胞相容性。

On the biodegradability, mechanical behavior, and cytocompatibility of amorphous Mg72 Zn23 Ca5 and crystalline Mg70 Zn23 Ca5 Pd2 alloys as temporary implant materials.

机构信息

Departament de Física, Facultat de Ciències, Universitat Autònoma de Barcelona, E-08193 Bellaterra, Spain.

出版信息

J Biomed Mater Res A. 2013 Feb;101(2):502-17. doi: 10.1002/jbm.a.34347. Epub 2012 Aug 28.

DOI:10.1002/jbm.a.34347
PMID:22927340
Abstract

The evolution of microstructure and mechanical properties of almost fully amorphous Mg(72) Zn(23) Ca(5) and crystalline Mg(70) Zn(23) Ca(5) Pd(2) alloys during immersion in Hank's balanced salt solution (HBSS), as well as their cytocompatibility, are investigated in order to assess the feasibility of both materials as biodegradable implants. Though the crystalline Mg(70) Zn(23) Ca(5) Pd(2) sample shows lower wettability and more positive corrosion potential, this sample degrades much faster upon incubation in HBSS as a consequence of the formation of micro-galvanic couples between the nobler Pd-rich dendrites and the surrounding phases. After 22-h immersion, the concentration of Mg ions in the HBSS medium containing the Mg(70) Zn(23) Ca(5) Pd(2) sample is six times larger than for Mg(72) Zn(23) Ca(5) . Due to the Zn enrichment and the incipient porosity, the mechanical properties of the Mg(72) Zn(23) Ca(5) sample improve within the first stages of biodegradation (i.e., hardness increases while the Young's modulus decreases, thus rendering an enhanced wear resistance). Cytocompatibility studies reveal that neither Mg(72) Zn(23) Ca(5) nor Mg(70) Zn(23) Ca(5) Pd(2) are cytotoxic, although preosteoblast cell adhesion is to some extent precluded, particularly onto the surface of Mg(70) Zn(23) Ca(5) Pd(2) , because of the relatively high hydrophobicity. Because of their outstanding properties and their time-evolution, the use of the Pd-free alloy in temporary implants such as screws, stents, and sutures is envisioned.

摘要

研究了几乎完全非晶态的 Mg(72)Zn(23)Ca(5) 和晶态的 Mg(70)Zn(23)Ca(5)Pd(2) 合金在 Hank's 平衡盐溶液(HBSS)中的微观结构和力学性能演变及其细胞相容性,以评估这两种材料作为可生物降解植入物的可行性。虽然晶态 Mg(70)Zn(23)Ca(5)Pd(2) 样品的润湿性较低,腐蚀电位更正,但由于富 Pd 树枝状晶和周围相之间形成了微电偶对,该样品在 HBSS 中的降解速度要快得多。在 22 小时的浸泡后,含有 Mg(70)Zn(23)Ca(5)Pd(2) 样品的 HBSS 介质中 Mg 离子的浓度是 Mg(72)Zn(23)Ca(5) 的六倍。由于 Zn 富集和初生孔隙,Mg(72)Zn(23)Ca(5) 样品的力学性能在生物降解的早期阶段得到改善(即硬度增加而杨氏模量降低,从而提高了耐磨性)。细胞相容性研究表明,Mg(72)Zn(23)Ca(5) 和 Mg(70)Zn(23)Ca(5)Pd(2) 都没有细胞毒性,尽管前成骨细胞的黏附在某种程度上受到阻碍,特别是在 Mg(70)Zn(23)Ca(5)Pd(2) 表面,这是由于其相对较高的疏水性。由于它们的优异性能及其时间演变,预计在临时植入物(如螺钉、支架和缝线)中使用无 Pd 合金。

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