无机过氧化物聚合物复合材料的抗菌性能比较

Dario Job, Justin Matta, Cat-Thy Dang, Yara Raphael, Joshua Vorstenbosch, Bentolhoda Helli, Geraldine Merle, Jake Barralet
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引用次数: 0

摘要

伤口愈合和预防细菌感染是现代医疗保健的重要方面。在这项研究中,通过制造聚己内酯与无机过氧化物的复合材料,生产出了抗菌薄膜。在生物相容性聚合物薄膜中加入了过氧化钙、过氧化镁和过氧化锌。此外,还添加了氧化铁、碳酸氢钠和磷酸钙,以减少过氧化氢并将 pH 值保持在较低的碱性范围内,从而优化材料的抗菌功效,同时最大限度地减少对人类成纤维细胞的细胞毒性。用常见的伤口病原体--金黄色葡萄球菌和绿脓杆菌--进行的实验证实,掺杂过氧化物的薄膜具有显著而持久的抗菌效果。研究结果表明,在薄膜中添加 CaO2 和 MgO2 会在 48 小时后增加对人类成纤维细胞的细胞毒性(与对照组相比减少 30%-40%),而基于 ZnO2 的薄膜则表现出最小的细胞毒性,在整个实验过程中始终保持 70% 以上的细胞存活率。我们研究了材料持续释放活性氧和氧气的情况,以及与抗菌活性相关的 pH 值变化。鉴于这些过氧化物具有独特的抗菌功效和哺乳动物生物相容性,因此,在适当复合以减少 pH 值变化并避免过氧化氢水平过高的情况下,这些过氧化物具有作为持续释放过氧化氢成分的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Comparison of antimicrobial properties of inorganic peroxide polymer composites

Comparison of antimicrobial properties of inorganic peroxide polymer composites

Wound healing and prevention of bacterial infections are critical aspects of modern medical care. In this work, antibacterial films were produced by creating composites of polycaprolactone with inorganic peroxides. Calcium, magnesium, and zinc peroxide were incorporated in a biocompatible polymeric film. Iron oxide, sodium bicarbonate, and calcium phosphate were added to reduce hydrogen peroxide and to maintain pH in a less alkaline range, allowing for optimization of the material's antibacterial efficacy while minimizing cytotoxicity toward human fibroblasts. Experiments with common wound pathogens, Staphylococcus aureus and Pseudomonas aerugonisa, confirmed significant and prolonged antibacterial effects of peroxide-doped films. Findings showed that the addition of CaO2 and MgO2 within the film increased cytotoxicity toward human fibroblasts after 48 h (30%–40% decrease compared to control), whereas ZnO2-based films exhibited a minimal cytotoxicity consistently maintaining over 70% cell viability throughout the course of the experiment. We examined the materials’ sustained release of reactive oxygen species and oxygen, and pH variation correlated with antibacterial activity. Given the unique combination of antibacterial efficacy and mammalian biocompatibility, these peroxides have value as components to sustain hydrogen peroxide release when appropriately compounded to reduce pH variation and avoid excessive hydrogen peroxide levels.

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