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可降解铁基支架腐蚀产物的细胞毒性:pH值和不溶性产物的相关性

Cytotoxicity of corrosion products of degradable Fe-based stents: relevance of pH and insoluble products.

作者信息

Fagali Natalia S, Grillo Claudia A, Puntarulo Susana, Fernández Lorenzo de Mele Mónica A

机构信息

Institute for Research in Theoretical and Applied Physical Chemistry (INIFTA), CONICET, Department of Chemistry, Faculty of Pure Sciences, UNLP, CC 16, Suc. 4, 1900, La Plata, Buenos Aires, Argentina.

Physical Chemistry - Institute of Biochemistry and Molecular Medicine (IBIMOL), School of Pharmacy and Biochemistry, UBA-CONICET, Buenos Aires, Argentina.

出版信息

Colloids Surf B Biointerfaces. 2015 Apr 1;128:480-488. doi: 10.1016/j.colsurfb.2015.02.047. Epub 2015 Mar 6.

Abstract

Fe-based biodegradable metallic materials (Fe-BMMs) have been proposed for cardiovascular applications and are expected to disappear via corrosion after an appropriate period. However, in vivo studies showed that Fe ions release leads to accumulation of orange and brownish insoluble products at the biomaterial/cell interface. As an additional consequence, sharp changes in pH may affect the biocompatibility of these materials. In the present work, the experimental protocols were designed with the aim of evaluating the relative importance that these factors have on biocompatibility evaluation of BMMs. Mitochondrial activity (MTT assay) and thiobarbituric acid reactive substances (TBARS) assay on mammalian cells, exposed to 1-5 mM of added Fe3+ salt, were assessed and compared with results linked exclusively to pH effects. Soluble Fe concentration in culture medium and intracellular Fe content were also determined. The results showed that: (i) mitochondrial activity was affected by pH changes over the entire range of concentrations of added Fe3+ assayed, (ii) at the highest added Fe3+ concentrations (≥3 mM), precipitation was detected and the cells were able to incorporate the precipitate, that seems to be linked to cell damage, (iii) the extent of precipitation depends on the Fe/protein concentration ratio; and (iv) lipid peroxidation products were detected over the entire range of concentrations of added Fe3+. Hence, a new approach opens in the biocompatibility evaluation of Fe-based BMMs, since the cytotoxicity would not be solely a function of released (and soluble) ions but of the insoluble degradation product amount and the pH falling at the biomaterial/cell interface. The concentration of Fe-containing products at the interface depends on diffusional conditions in a very complex way that should be carefully analyzed in the future.

摘要

铁基可生物降解金属材料(Fe-BMMs)已被提议用于心血管应用,并有望在适当时间后通过腐蚀消失。然而,体内研究表明,铁离子释放会导致在生物材料/细胞界面处积累橙色和褐色不溶性产物。另外,pH值的急剧变化可能会影响这些材料的生物相容性。在本工作中,设计了实验方案,旨在评估这些因素对BMMs生物相容性评估的相对重要性。对暴露于1-5 mM添加的Fe3+盐的哺乳动物细胞进行线粒体活性(MTT测定)和硫代巴比妥酸反应性物质(TBARS)测定,并与仅与pH效应相关的结果进行比较。还测定了培养基中的可溶性铁浓度和细胞内铁含量。结果表明:(i)在所测定的添加Fe3+的整个浓度范围内,线粒体活性受pH变化的影响;(ii)在最高添加Fe3+浓度(≥3 mM)时,检测到沉淀,并且细胞能够摄取沉淀,这似乎与细胞损伤有关;(iii)沉淀程度取决于铁/蛋白质浓度比;(iv)在添加Fe3+的整个浓度范围内均检测到脂质过氧化产物。因此,在铁基BMMs的生物相容性评估中开辟了一种新方法,因为细胞毒性不仅取决于释放的(和可溶的)离子,还取决于不溶性降解产物的量以及生物材料/细胞界面处的pH下降。界面处含铁产物的浓度以非常复杂的方式取决于扩散条件,未来应仔细分析。

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