Micromotors for antimicrobial resistance bacteria inactivation in water systems: opportunities and challenges

IF 5.8 2区 环境科学与生态学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Carmen Cuntín-Abal, Beatriz Jurado-Sánchez and Alberto Escarpa
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Abstract

The intensive use of antibiotics and the inadequate removal in water treatment plants have contributed to the phenomena of antimicrobial resistance. Bacterial colonies and biofilms present in water distribution and aquatic systems respond to the presence of antibiotics by the generation of resistance genes and other determinants transmitted through the environment. In this perspective, we identify the opportunities and challenges of self-propelled micromotors in the fight against antimicrobial resistance by the elimination of antibiotics and bacteria in water. Recent progress is contextualized in the current scenario in terms of bacteria and antibiotics found in real settings and current removal technologies. As illustrated in this perspective, the unique features of micromotors result in a high surface area to-mass ratio for enhanced degradation capabilities, for both antibiotic removal and bacteria biofilm inactivation, as compared with static current technologies. The autonomous movement of micromotors allows us to reach more volumes of water and even hard-to-access areas, offering great opportunities to reach hard-to-access pipelines, not accessible by current approaches. Yet, as envisioned in this perspective, micromotors are far away from real applications, hampered mainly by the main challenges of the treatment of high-water volumes. We also advocate scientists to include in the proof-of-concept studies real water and the evaluation of a major number of antibiotics and bacteria commonly found in real settings, as will be described in this perspective. Micromotors hold considerable promise as a holistic approach to fight antimicrobial resistance, but cross-discipline collaborations are a must to translate the recent progress into real practical applications.

Abstract Image

用于水系统中抗菌素耐药性细菌灭活的微电机:机遇与挑战
水处理厂抗生素的大量使用和去除不充分导致了抗菌素耐药性现象。供水系统和水生系统中存在的细菌菌落和生物膜通过产生抗性基因和其他通过环境传播的决定因素对抗生素的存在作出反应。从这个角度来看,我们确定了通过消除水中的抗生素和细菌来对抗抗菌素耐药性的自我推进微型电机的机遇和挑战。最近的进展是在当前的情况下,在实际环境中发现的细菌和抗生素和当前的去除技术。从这个角度来看,与静态电流技术相比,微电机的独特特性导致了高表面积质量比,从而增强了降解能力,既可以去除抗生素,也可以使细菌生物膜失活。微型马达的自主运动可以到达更多的水,甚至是难以到达的区域,为难以到达的管道提供了很大的机会,目前的方法无法到达。然而,正如这一观点所设想的那样,微电机离实际应用还很远,主要受到高水量处理的主要挑战的阻碍。我们还提倡科学家在概念验证研究中纳入真实的水,并对真实环境中常见的大量抗生素和细菌进行评估,这将在这个角度进行描述。作为对抗抗菌素耐药性的整体方法,微电机具有相当大的前景,但要将最近的进展转化为实际应用,必须进行跨学科合作。
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来源期刊
Environmental Science: Nano
Environmental Science: Nano CHEMISTRY, MULTIDISCIPLINARY-ENVIRONMENTAL SCIENCES
CiteScore
12.20
自引率
5.50%
发文量
290
审稿时长
2.1 months
期刊介绍: Environmental Science: Nano serves as a comprehensive and high-impact peer-reviewed source of information on the design and demonstration of engineered nanomaterials for environment-based applications. It also covers the interactions between engineered, natural, and incidental nanomaterials with biological and environmental systems. This scope includes, but is not limited to, the following topic areas: Novel nanomaterial-based applications for water, air, soil, food, and energy sustainability Nanomaterial interactions with biological systems and nanotoxicology Environmental fate, reactivity, and transformations of nanoscale materials Nanoscale processes in the environment Sustainable nanotechnology including rational nanomaterial design, life cycle assessment, risk/benefit analysis
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