Biomimetic hydrogel coatings for improving the corrosion resistance, hemocompatibility, and endothelial cell growth of the magnesium alloy

IF 5.4 2区 医学 Q1 BIOPHYSICS
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Abstract

The fast biodegradation and poor biocompatibility of Mg alloys in physiological environments are still the main problems restricting their application in cardiovascular stents. In this study, the hydrogel coatings (SBMA-AAM) with different proportions of methacryloyl ethyl sulfobetaine (SBMA) and acrylamide (AAM) were built on the surface of AZ31B magnesium alloy through ultraviolet (UV) polymerization. The corrosion degradation behavior, hemocompatibility, and endothelial cell (EC) growth performance of the samples were studied in detail. The findings revealed that the uniform and dense SBMA-AAM coatings could significantly enhance the corrosion resistance. In addition, the hydrogel coatings showed excellent hydrophilicity, which increased the albumin adsorption while inhibiting the fibrinogen adsorption, and thus reduced the platelet adhesion and activation and hemolysis rate, accordingly significantly enhancing their anticoagulant performance. Furthermore, SBMA-AAM hydrogel coating promoted the EC adhesion and proliferation and the vascular endothelial growth factor (VEGF) and nitric oxide (NO) secretion of ECs, which is conducive to promoting endothelialization. When the concentration ratio of SBMA and AAM was 1: 2, the modified magnesium alloy showed the best corrosion resistance and biocompatibility. Therefore, the SBMA-AAM hydrogel coating could effectively regulate the corrosion degradation performance and biocompatibility of Mg alloys, laying a foundation for the application of Mg alloys in cardiovascular stents.

改善镁合金耐腐蚀性、血液相容性和内皮细胞生长的仿生水凝胶涂层
镁合金在生理环境中的快速生物降解和较差的生物相容性仍然是限制其在心血管支架中应用的主要问题。本研究通过紫外线聚合法在 AZ31B 镁合金表面构建了不同比例的甲基丙烯酰乙基磺基甜菜碱(SBMA)和丙烯酰胺(AAM)水凝胶涂层(SBMA-AAM)。详细研究了样品的腐蚀降解行为、血液相容性和内皮细胞(EC)生长性能。研究结果表明,均匀致密的 SBMA-AAM 涂层能显著提高耐腐蚀性。此外,水凝胶涂层还表现出优异的亲水性,在增加白蛋白吸附的同时抑制了纤维蛋白原的吸附,从而降低了血小板的粘附、活化和溶血率,因此大大提高了其抗凝性能。此外,SBMA-AAM 水凝胶涂层还能促进血管内皮细胞的粘附和增殖,促进血管内皮生长因子(VEGF)和一氧化氮(NO)的分泌,有利于促进血管内皮化。当 SBMA 和 AAM 的浓度比为 1:2 时,改性镁合金显示出最佳的耐腐蚀性和生物相容性。因此,SBMA-AAM 水凝胶涂层能有效调节镁合金的腐蚀降解性能和生物相容性,为镁合金在心血管支架中的应用奠定了基础。
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来源期刊
Colloids and Surfaces B: Biointerfaces
Colloids and Surfaces B: Biointerfaces 生物-材料科学:生物材料
CiteScore
11.10
自引率
3.40%
发文量
730
审稿时长
42 days
期刊介绍: Colloids and Surfaces B: Biointerfaces is an international journal devoted to fundamental and applied research on colloid and interfacial phenomena in relation to systems of biological origin, having particular relevance to the medical, pharmaceutical, biotechnological, food and cosmetic fields. Submissions that: (1) deal solely with biological phenomena and do not describe the physico-chemical or colloid-chemical background and/or mechanism of the phenomena, and (2) deal solely with colloid/interfacial phenomena and do not have appropriate biological content or relevance, are outside the scope of the journal and will not be considered for publication. The journal publishes regular research papers, reviews, short communications and invited perspective articles, called BioInterface Perspectives. The BioInterface Perspective provide researchers the opportunity to review their own work, as well as provide insight into the work of others that inspired and influenced the author. Regular articles should have a maximum total length of 6,000 words. In addition, a (combined) maximum of 8 normal-sized figures and/or tables is allowed (so for instance 3 tables and 5 figures). For multiple-panel figures each set of two panels equates to one figure. Short communications should not exceed half of the above. It is required to give on the article cover page a short statistical summary of the article listing the total number of words and tables/figures.
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