Faculty of Architecture and Urbanism, UTE University, Calle Rumipamba S/N and Bourgeois, Quito, Ecuador; Institute of Energy Infrastructure (IEI), Universiti Tenaga Nasional (UNITEN), Selangor Darul Ehsan, Kajang, 43000, Malaysia; Department of Biomaterials, Saveetha Dental College and Hospital, Saveetha Institute of Medical and Technical Sciences, Chennai, 600 077, India; Process Systems Engineering Centre (PROSPECT), Faculty of Chemical and Energy Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Skudai, Johor, Malaysia.
Engineering Department, Razak Faculty of Technology and Informatics, Universiti Teknologi Malaysia, Jln Sultan Yahya Petra, 54100, Kuala Lumpur, Malaysia.
Chemosphere. 2023 Sep;335:139103. doi: 10.1016/j.chemosphere.2023.139103. Epub 2023 Jun 2.
Metallic nanoparticles (NPs) are of particular interest as antimicrobial agents in water and wastewater treatment due to their broad suppressive range against bacteria, viruses, and fungi commonly found in these environments. This review explores the potential of different types of metallic NPs, including zinc oxide, gold, copper oxide, and titanium oxide, for use as effective antimicrobial agents in water and wastewater treatment. This is due to the fact that metallic NPs possess a broad suppressive range against bacteria, viruses, as well as fungus. In addition to that, NPs are becoming an increasingly popular alternative to antibiotics for treating bacterial infections. Despite the fact that most research has been focused on silver NPs because of the antibacterial qualities that are known to be associated with them, curiosity about other metallic NPs as potential antimicrobial agents has been growing. Zinc oxide, gold, copper oxide, and titanium oxide NPs are included in this category since it has been demonstrated that these elements have antibacterial properties. Inducing oxidative stress, damage to the cellular membranes, and breakdowns throughout the protein and DNA chains are some of the ways that metallic NPs can have an influence on microbial cells. The purpose of this review was to engage in an in-depth conversation about the current state of the art regarding the utilization of the most important categories of metallic NPs that are used as antimicrobial agents. Several approaches for the synthesis of metal-based NPs were reviewed, including physical and chemical methods as well as "green synthesis" approaches, which are synthesis procedures that do not involve the employment of any chemical agents. Moreover, additional pharmacokinetics, physicochemical properties, and the toxicological hazard associated with the application of silver NPs as antimicrobial agents were discussed.
金属纳米粒子(NPs)因其对环境中常见的细菌、病毒和真菌具有广泛的抑制范围,而作为水和废水处理中的抗菌剂具有特别的意义。本文综述了不同类型的金属纳米粒子,包括氧化锌、金、氧化铜和氧化钛,作为水和废水处理中有效抗菌剂的潜力。这是因为金属 NPs 对细菌、病毒和真菌具有广泛的抑制范围。此外,纳米粒子正成为治疗细菌感染的抗生素替代品之一。尽管大多数研究都集中在银 NPs 上,因为它们具有已知的抗菌特性,但对其他金属 NPs 作为潜在抗菌剂的兴趣也在不断增加。氧化锌、金、氧化铜和氧化钛 NPs 被包含在这一类中,因为已经证明这些元素具有抗菌特性。金属 NPs 可以通过诱导氧化应激、破坏细胞膜以及破坏蛋白质和 DNA 链等方式对微生物细胞产生影响。本综述的目的是深入探讨作为抗菌剂使用的最重要的金属 NPs 类别利用的最新技术状态。本文综述了几种金属基 NPs 的合成方法,包括物理和化学方法以及“绿色合成”方法,即不使用任何化学试剂的合成过程。此外,还讨论了银 NPs 作为抗菌剂的药代动力学、物理化学性质和毒理学危害。
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