Unveiling the power of nanotechnology: a novel approach to eliminating antibiotic-resistant bacteria and genes from municipal effluent.

IF 3.2 3区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Maede Esmaeili Khoshmardan, Hadi Esmaeili Khoshmardan, Behnam Khoshandam, Mohamadreza Massoudinejad, Saeed Motesaddi Zarandi, Hassan Abdoos
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Abstract

The increasing global population and declining freshwater resources have heightened the urgency of ensuring safe and accessible water supplies.Query The persistence of antibiotic-resistant bacteria (ARB) and antibiotic-resistant genes (ARGs) in municipal effluents poses a significant public health threat, exacerbated by the widespread use of antibiotics and the inadequate removal of contaminants in wastewater treatment facilities. Conventional treatment methods often fail to eliminate these emerging pollutants, facilitating their entry into agricultural systems and natural water bodies, thereby accelerating the spread of antimicrobial resistance. To address these challenges, interdisciplinary strategies in water treatment are essential. Nanotechnology has emerged as a promising approach due to its unique physicochemical properties, biocompatibility, and high efficiency in detecting and removing biological and chemical contaminants. Various nanomaterials, including graphene-based structures, Carbon nanotubes (CNTs), noble metal nanoparticles (gold (Au) and silver (Ag)), silicon and chitosan-based nanomaterials, as well as titanium and Zinc oxide (ZnO) nanomaterials, demonstrate potent antimicrobial effects. Moreover, nanosensors and photocatalysts utilizing these nanomaterials enable precise detection and effective degradation of ARB and ARGs in wastewater. This review examines the mechanisms by which nanotechnology-based materials can mitigate the risks associated with antibiotic resistance in urban effluents, focusing on their applications in pathogen detection, pollutant removal, and wastewater treatment. By integrating nanotechnology into existing treatment frameworks, we can significantly enhance the efficiency of water purification processes, ultimately contributing to global water security and the protection of public health.

揭示纳米技术的力量:一种从城市污水中消除耐抗生素细菌和基因的新方法。
全球人口的增加和淡水资源的减少使确保安全和可获得的供水更加紧迫。城市污水中耐抗生素细菌(ARB)和耐抗生素基因(ARGs)的持续存在对公共卫生构成重大威胁,抗生素的广泛使用和污水处理设施中污染物的去除不足加剧了这一威胁。传统的处理方法往往不能消除这些新出现的污染物,从而促进它们进入农业系统和自然水体,从而加速了抗菌素耐药性的传播。为了应对这些挑战,水处理领域的跨学科战略至关重要。纳米技术由于其独特的物理化学性质、生物相容性以及在检测和去除生物和化学污染物方面的高效率而成为一种很有前途的方法。各种纳米材料,包括石墨烯基结构、碳纳米管(CNTs)、贵金属纳米颗粒(金(Au)和银(Ag))、硅和壳聚糖基纳米材料,以及钛和氧化锌(ZnO)纳米材料,都显示出强大的抗菌效果。此外,利用这些纳米材料的纳米传感器和光催化剂可以精确检测和有效降解废水中的ARB和ARGs。本文综述了基于纳米技术的材料减轻城市污水中抗生素耐药性风险的机制,重点介绍了它们在病原体检测、污染物去除和废水处理方面的应用。通过将纳米技术整合到现有的处理框架中,我们可以大大提高水净化过程的效率,最终促进全球水安全和保护公众健康。
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来源期刊
Environmental Geochemistry and Health
Environmental Geochemistry and Health 环境科学-工程:环境
CiteScore
8.00
自引率
4.80%
发文量
279
审稿时长
4.2 months
期刊介绍: Environmental Geochemistry and Health publishes original research papers and review papers across the broad field of environmental geochemistry. Environmental geochemistry and health establishes and explains links between the natural or disturbed chemical composition of the earth’s surface and the health of plants, animals and people. Beneficial elements regulate or promote enzymatic and hormonal activity whereas other elements may be toxic. Bedrock geochemistry controls the composition of soil and hence that of water and vegetation. Environmental issues, such as pollution, arising from the extraction and use of mineral resources, are discussed. The effects of contaminants introduced into the earth’s geochemical systems are examined. Geochemical surveys of soil, water and plants show how major and trace elements are distributed geographically. Associated epidemiological studies reveal the possibility of causal links between the natural or disturbed geochemical environment and disease. Experimental research illuminates the nature or consequences of natural or disturbed geochemical processes. The journal particularly welcomes novel research linking environmental geochemistry and health issues on such topics as: heavy metals (including mercury), persistent organic pollutants (POPs), and mixed chemicals emitted through human activities, such as uncontrolled recycling of electronic-waste; waste recycling; surface-atmospheric interaction processes (natural and anthropogenic emissions, vertical transport, deposition, and physical-chemical interaction) of gases and aerosols; phytoremediation/restoration of contaminated sites; food contamination and safety; environmental effects of medicines; effects and toxicity of mixed pollutants; speciation of heavy metals/metalloids; effects of mining; disturbed geochemistry from human behavior, natural or man-made hazards; particle and nanoparticle toxicology; risk and the vulnerability of populations, etc.
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