Paris-Sud University, Faculty of Pharmacy, EA 401 "Groupe Matériaux et Santé", Paris, France; Assistance Publique - Hôpitaux de Paris, Agence Générale des Produits et Equipements de Santé, Quality Control Department, Paris, France.
Paris-Sud University, Faculty of Pharmacy, EA 401 "Groupe Matériaux et Santé", Paris, France.
Mater Sci Eng C Mater Biol Appl. 2019 Apr;97:377-387. doi: 10.1016/j.msec.2018.12.032. Epub 2018 Dec 11.
We study the effect of simulated biological aging on the properties of cyclic olefin copolymers and particularly their biocompatibility. Already reported as biocompatible polymers according to ISO/EN 10993 guidelines, COC are good candidates for medical devices. The influence of two major additives (antioxidants and lubricants) was investigated and comparison with non-aging COC was done. Four in vitro simulated biological conditions were tested: 2 extreme pH (1 and 9) to simulate digestive tract environment; THP-1-derived macrophages contact and pro-oxidant medium with hypochlorite solution simulating the oxidative attack during the foreign body reaction. After one month of incubation with the different media at 37 °C, surface topography was studied by atomic force microscopy (AFM) and IR spectroscopy. Extracts of incubated media were also analysed in chromatography to investigate potential degradation products. Cytotoxicity (MTT and LDH) of the materials was evaluated using cell culture methods with L929 fibroblasts. Oxidative stress (ROS and SOD analysis) and two inflammatory biomarkers (Il-6 and TNF-α secretion) were explored on THP-1-derived macrophages in direct contact with aged COC. Surface topography of COC was modified by aging conditions with an influence of antioxidant presence and under some conditions. HPLC analysis realized on freeze-dried solutions issued from the different incubations showed the presence of traces of low molecular weight compounds issued from polyphenolic antioxidant and from COC degradation. GC-MS analysis carried out directly on the different incubated COC, showed no detectable leachable molecules. No cytotoxicity has been observed with the different aged COC. However, results show that the pH environment had an influence on the cytotoxicity tests with a protecting effect of antioxidant presence; and pro-oxidant incubating conditions decreased cellular viability on COC. pH 1 and pH 9 conditions also induced an increase of ROS production which was partially reduced for COC containing an antioxidant or a lubricant. Il-6 production was globally more important for aged COC compared with basal condition and particularly for oxidative simulated environment. Those results indicate that physiological factors like pH or oxidant conditions have an impact on surface topography and on COC interaction with the biological environment but without compromising their biocompatibility. Antioxidant or lubricant presence could modulate these variations pointing out the necessity of a thoroughly investigation for biocompatibility assessment of COC as a component of implantable devices. COCs show a good biocompatibility even after accelerated aging under extreme biological conditions.
我们研究了模拟生物老化对环状烯烃共聚物性能的影响,特别是它们的生物相容性。根据 ISO/EN 10993 指南,COC 已经被报道为生物相容的聚合物,是医疗器械的良好候选材料。我们研究了两种主要添加剂(抗氧化剂和润滑剂)的影响,并与未老化的 COC 进行了比较。我们测试了四种体外模拟生物条件:两种极端 pH 值(1 和 9)以模拟消化道环境;THP-1 衍生的巨噬细胞接触和促氧化剂介质,其中含有次氯酸盐溶液模拟异物反应中的氧化攻击。在 37°C 下用不同的介质孵育一个月后,通过原子力显微镜(AFM)和红外光谱研究表面形貌。还通过色谱法分析孵育介质的提取物,以研究潜在的降解产物。使用 L929 成纤维细胞的细胞培养方法评估材料的细胞毒性(MTT 和 LDH)。通过与老化的 COC 直接接触,在 THP-1 衍生的巨噬细胞中探索了氧化应激(ROS 和 SOD 分析)和两种炎症生物标志物(IL-6 和 TNF-α 分泌)。老化条件下 COC 的表面形貌发生了变化,抗氧化剂的存在有影响,在某些条件下也是如此。对不同孵育条件下冻干溶液进行的 HPLC 分析表明,存在低分子量化合物的痕迹,这些化合物来自多酚抗氧化剂和 COC 降解。直接对不同孵育的 COC 进行的 GC-MS 分析表明,没有检测到可浸出的分子。不同老化的 COC 没有表现出细胞毒性。然而,结果表明,pH 值环境对细胞毒性测试有影响,抗氧化剂的存在有保护作用;促氧化剂孵育条件降低了 COC 上的细胞活力。pH 值 1 和 pH 值 9 条件也诱导了 ROS 产生的增加,而含有抗氧化剂或润滑剂的 COC 部分减少了 ROS 的产生。与基础条件相比,老化 COC 产生的 IL-6 总体上更多,特别是在氧化模拟环境下。这些结果表明,生理因素如 pH 值或氧化剂条件会影响 COC 的表面形貌及其与生物环境的相互作用,但不会影响其生物相容性。抗氧化剂或润滑剂的存在可能会调节这些变化,这表明有必要对 COC 作为植入物组件的生物相容性评估进行彻底研究。即使在极端生物条件下加速老化后,COC 仍具有良好的生物相容性。