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Pure and multi metal oxide nanoparticles: synthesis antibacterial and cytotoxic properties

机译:纯金属和多金属氧化物纳米粒子:合成抗菌和细胞毒性

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摘要

Th antibacterial activity of metal oxide nanoparticles has received marked global attention as they can be specifically synthesized to exhibit significant toxicity to bacteria. The importance of their application as antibacterial agents is evident keeping in mind the limited range and effectiveness of antibiotics, on one hand, and the plethora of metal oxides, on the other, along with the propensity of nanoparticles to induce resistance being much lower than that of antibiotics. Effective inhibition against a wide range of bacteria is well known for several nano oxides consisting of one metal (Fe3O4, TiO2, CuO, ZnO), whereas, research in the field of multi-metal oxides still demands extensive exploration. This is understandable given that the relationship between physicochemical properties and biological activity seems to be complex and difficult to generalize even for metal oxide nanoparticles consisting of only one metal component. Also, despite the broad scope that metal oxide nanoparticles have as antibacterial agents, there arise problems in practical applications taking into account the cytotoxic effects. In this respect, the consideration of polymetallic oxides for biological applications becomes even greater since these can provide synergetic effects and unify the best physicochemical properties of their components. For instance, strong antibacterial efficiency specific of one metal oxide can be complemented by non-cytotoxicity of another. This review presents the main methods and technological advances in fabrication of nanostructured metal oxides with a particular emphasis to multi-metal oxide nanoparticles, their antibacterial effects and cytotoxicity.
机译:金属氧化物纳米颗粒的抗菌活性已引起了全球的广泛关注,因为它们可以被专门合成以表现出对细菌的显着毒性。显然,考虑到抗生素的范围和有效性,一方面它们作为抗菌剂的重要性;另一方面,过多的金属氧化物以及纳米颗粒诱导耐药性的可能性远低于抗生素。抗生素。对于由一种金属(Fe3O4,TiO2,CuO,ZnO)组成的几种纳米氧化物,有效抑制多种细菌的作用是众所周知的,然而,在多金属氧化物领域的研究仍需进行广泛的探索。鉴于即使仅由一种金属成分构成的金属氧化物纳米粒子,理化性质与生物活性之间的关系似乎复杂且难以概括,这是可以理解的。同样,尽管金属氧化物纳米颗粒具有广泛的抗菌作用,但考虑到细胞毒性作用,在实际应用中仍会出现问题。在这方面,对于生物应用的多金属氧化物的考虑变得更加重要,因为它们可以提供协同作用并统一其组分的最佳物理化学性质。例如,一种金属氧化物特有的强抗菌作用可以被另一种金属氧化物的无细胞毒性所补充。这篇综述介绍了纳米结构金属氧化物制造中的主要方法和技术进展,特别着重于多金属氧化物纳米颗粒,它们的抗菌作用和细胞毒性。

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