Biogenic Zinc Oxide Nanoparticles: An Insight into the Advancements in Antimicrobial Resistance

IF 1.8 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Avinash Sharma, Akash K., Swati Kumari, Kartik Chauhan, Abija James, Riya Goel, Jay Singh, Rupak Nagraik, Deepak Kumar
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Abstract

Multidrug resistance (MDR) is a significant global challenge requiring strategic solutions to address bacterial infections. Recent advancements in nanotechnology, particularly in the synthesis of zinc oxide nanoparticles (ZnO NPs) using natural agents as stabilizers and reducing agents, have shown promising results in combating MDR. These nanoparticles possess strong antimicrobial properties against different strains of Gram-positive and Gram-negative, making them suitable for various industries, including food, pharmaceuticals, coatings, and medical devices. ZnO-NPs work by generating reactive oxygen species, releasing zinc ions (Zn2+), disrupting the bacterial cell membrane, interfering with metabolic processes and genetic material, and inducing oxidative stress and apoptosis. However, more research is needed to refine synthesis techniques, control size and morphology, and increase antibacterial efficacy. To fully understand their potential, interactions with proteins, DNA, and bacterial cell walls must also be examined. Investigating the synergistic potential of biogenic ZnO NPs with conventional antibacterial treatments could enhance therapeutic effectiveness while minimizing the risk of resistance emergence. Here we provide insight into the advancements in biogenic synthesis of nanoparticles using bio extracts and their applications in antimicrobial resistance as well as various factors affecting the synthesis process and characterization techniques for ZnO NPs. Recent studies on the antimicrobial activity of biogenic ZnO NPs against different pathogens and their mechanisms of action are discussed. Furthermore, potential applications of biogenic ZnO NPs as antimicrobial agents are highlighted.
生物纳米氧化锌:洞察抗菌剂耐药性的进展
多重耐药性(MDR)是一项重大的全球性挑战,需要战略性的解决方案来解决细菌感染问题。纳米技术的最新进展,特别是利用天然药物作为稳定剂和还原剂合成氧化锌纳米粒子(ZnO NPs)的技术,在抗击 MDR 方面取得了可喜的成果。这些纳米粒子对不同的革兰氏阳性和革兰氏阴性菌株具有很强的抗菌性,因此适用于食品、药品、涂料和医疗器械等多个行业。ZnO-NPs 通过产生活性氧、释放锌离子(Zn2+)、破坏细菌细胞膜、干扰新陈代谢过程和遗传物质、诱导氧化应激和细胞凋亡来发挥作用。然而,要完善合成技术、控制大小和形态以及提高抗菌功效,还需要进行更多的研究。要充分了解它们的潜力,还必须研究它们与蛋白质、DNA 和细菌细胞壁的相互作用。研究生物氧化锌氮氧化物与传统抗菌疗法的协同潜力可以提高治疗效果,同时最大限度地降低抗药性产生的风险。在此,我们将深入探讨利用生物提取物合成生物纳米粒子的进展及其在抗菌治疗中的应用,以及影响 ZnO NPs 合成过程和表征技术的各种因素。此外,还讨论了有关生物氧化锌纳米粒子对不同病原体的抗菌活性及其作用机制的最新研究。此外,还强调了生物氧化锌氮氧化物作为抗菌剂的潜在应用。
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来源期刊
ECS Journal of Solid State Science and Technology
ECS Journal of Solid State Science and Technology MATERIALS SCIENCE, MULTIDISCIPLINARY-PHYSICS, APPLIED
CiteScore
4.50
自引率
13.60%
发文量
455
期刊介绍: The ECS Journal of Solid State Science and Technology (JSS) was launched in 2012, and publishes outstanding research covering fundamental and applied areas of solid state science and technology, including experimental and theoretical aspects of the chemistry and physics of materials and devices. JSS has five topical interest areas: carbon nanostructures and devices dielectric science and materials electronic materials and processing electronic and photonic devices and systems luminescence and display materials, devices and processing.
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