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Antibacterial Nanocomposites Based on Thermosetting Polymers Derived from Vegetable Oils and Metal Oxide Nanoparticles

机译:基于植物油和金属氧化物纳米粒子衍生的热固性聚合物的抗菌纳米复合材料

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摘要

Thermosetting polymers derived from vegetable oils (VOs) exhibit a wide range of outstanding properties that make them suitable for coatings, paints, adhesives, food packaging, and other industrial appliances. In addition, some of them show remarkable antimicrobial activity. Nonetheless, the antibacterial properties of these materials can be significantly improved via incorporation of very small amounts of metal oxide nanoparticles (MO-NPs) such as TiO , ZnO, CuO, or Fe O . The antimicrobial efficiency of these NPs correlates with their structural properties like size, shape, and mainly on their concentration and degree of functionalization. Owing to their nanoscale dimensions, high specific surface area and tailorable surface chemistry, MO-NPs can discriminate bacterial cells from mammalian ones, offering long-term antibacterial action. MO-NPs provoke bacterial toxicity through generation of reactive oxygen species (ROS) that can target physical structures, metabolic paths, as well as DNA synthesis, thereby leading to cell decease. Furthermore, other modes of action—including lipid peroxidation, cell membrane lysis, redox reactions at the NP–cell interface, bacterial phagocytosis, etc.—have been reported. In this work, a brief description of current literature on the antimicrobial effect of VO-based thermosetting polymers incorporating MO-NPs is provided. Specifically, the preparation of the nanocomposites, their morphology, and antibacterial properties are comparatively discussed. A critical analysis of the current state-of-art on these nanomaterials improves our understanding to overcome antibiotic resistance and offers alternatives to struggle bacterial infections in public places.
机译:衍生自植物油(VOs)的热固性聚合物表现出广泛的优异性能,使其适用于涂料,油漆,粘合剂,食品包装和其他工业设备。另外,其中一些显示出显着的抗菌活性。尽管如此,通过掺入非常少量的金属氧化物纳米颗粒(MO-NP)(例如TiO,ZnO,CuO或Fe O),可以显着改善这些材料的抗菌性能。这些NP的抗菌效率与其结构性质如大小,形状有关,并且主要与它们的浓度和功能化程度有关。由于其纳米级的尺寸,高的比表面积和可定制的表面化学性质,MO-NP可区分细菌细胞与哺乳动物细胞,从而提供长期的抗菌作用。 MO-NP通过产生可靶向物理结构,代谢途径以及DNA合成的活性氧(ROS)激发细菌毒性,从而导致细胞死亡。此外,已经报道了其他作用方式,包括脂质过氧化,细胞膜裂解,NP-细胞界面的氧化还原反应,细菌吞噬作用等。在这项工作中,提供了有关结合了MO-NP的VO基热固性聚合物的抗菌作用的现有文献的简要描述。具体而言,对纳米复合材料的制备,它们的形态和抗菌性能进行了比较讨论。对这些纳米材料的最新技术进行的批判性分析提高了我们对克服抗生素耐药性的理解,并为在公共场所抵抗细菌感染提供了替代方法。

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