Molecular Toxicology Laboratory, Department of Biotechnology, Bharathiar University, Coimbatore 641 046, Tamil Nadu, India.
Molecular Toxicology Laboratory, Department of Biotechnology, Bharathiar University, Coimbatore 641 046, Tamil Nadu, India.
Int J Antimicrob Agents. 2017 Feb;49(2):137-152. doi: 10.1016/j.ijantimicag.2016.11.011. Epub 2017 Jan 3.
Microbial infectious diseases are a global threat to human health. Excess and improper use of antibiotics has created antimicrobial-resistant microbes that can defy clinical treatment. The hunt for safe and alternate antimicrobial agents is on in order to overcome such resistant micro-organisms, and the birth of nanotechnology offers promise to combat infectious organisms. Over the past two decades, metal oxide nanoparticles (MeO-NPs) have become an attractive alternative source to combat microbes that are highly resistant to various classes of antibiotics. Their vast array of physicochemical properties enables MeO-NPs to act as antimicrobial agents through various mechanisms. Apart from exhibiting antimicrobial properties, MeO-NPs also serve as carriers of drugs, thus barely providing a chance for micro-organisms to develop resistance. These immense multiple properties exhibited by MeO-NPs will have an impact on the treatment of deadly infectious diseases. This review discusses the mechanisms of action of MeO-NPs against micro-organisms, safety concerns, challenges and future perspectives.
微生物传染病是全球人类健康的一大威胁。抗生素的过度和不当使用已经产生了能够抵抗临床治疗的抗微生物微生物。为了克服这种耐药微生物,人们正在寻找安全和替代的抗菌剂,而纳米技术的诞生有望对抗感染生物。在过去的二十年中,金属氧化物纳米粒子(MeO-NPs)已成为一种有吸引力的替代来源,可以对抗对各种类抗生素具有高度耐药性的微生物。它们广泛的物理化学性质使 MeO-NPs 能够通过各种机制发挥抗菌作用。除了表现出抗菌特性外,MeO-NPs 还可用作药物载体,从而几乎没有给微生物产生耐药性的机会。MeO-NPs 表现出的这些巨大的多重特性将对治疗致命性传染病产生影响。本文综述了 MeO-NPs 对抗微生物的作用机制、安全性问题、挑战和未来展望。