Free-Living Protozoa as Important Drivers of Antimicrobial Resistance in Engineered Water Systems and Their Ecological Niches

IF 4.3 Q1 ENVIRONMENTAL SCIENCES
Mira Cooper-Beknazarova*, Ben van den Akker and Nicholas J. Ashbolt, 
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Abstract

Bacteria and free-living protozoa (FLP) have been coevolving in a predator–prey relationship for well over a billion years, facilitating an array of “arms race” mechanisms, including antimicrobial resistance (AMR). This perspective explores the role of FLP, including free-living amoebae (FLA), in promoting AMR with a focus on wastewater treatment plants (WWTPs), recognized hotspots for the release of AMR. Technological advances in WWTPs have changed ecological niches, impacting their microbial communities. Each process alters the diversity, abundance, and activity of FLP/FLA and bacteria, generally increasing the potential for horizontal gene transfer of antibiotic resistance genes (ARGs). Further, disinfection treatments such as chlorination, UV irradiation, and ozonation may inadvertently select for antibiotic-resistant bacteria (ARB) and multidrug resistance through natural stress responses, which are also enhanced and protected within FLP. Overall, there is a critical need to better understand the ecological impacts of biological wastewater treatment technologies and their associated interactions between FLP/FLA and ARB, and their pathways of AMR dissemination through engineered and natural water systems. This perspective underscores the importance of going beyond fecal indicator-ARG monitoring to control AMR in wastewater treatments and water reuse to mitigate risks associated with the dissemination of AMR via the environment.

Abstract Image

自由生活的原生动物是工程水系统及其生态位中抗菌素耐药性的重要驱动因素
细菌和自由生活的原生动物(FLP)在捕食者-猎物关系中共同进化了超过10亿年,促进了一系列“军备竞赛”机制,包括抗菌素耐药性(AMR)。这一观点探讨了FLP,包括自由生活变形虫(FLA),在促进AMR中的作用,重点是废水处理厂(WWTPs),公认的AMR释放热点。污水处理厂的技术进步改变了生态位,影响了微生物群落。每个过程都会改变FLP/FLA和细菌的多样性、丰度和活性,通常会增加抗生素耐药基因(ARGs)水平基因转移的可能性。此外,氯化、紫外线照射和臭氧化等消毒处理可能会通过自然应激反应无意中选择抗生素耐药菌(ARB)和多药耐药菌,这些自然应激反应也在FLP中得到增强和保护。总之,迫切需要更好地了解生物废水处理技术的生态影响、FLP/FLA和ARB之间的相互作用,以及它们通过工程和自然水系统传播AMR的途径。这一观点强调了超越粪便指标- arg监测的重要性,以控制废水处理和水回用中的抗菌素耐药性,以减轻与抗菌素耐药性通过环境传播相关的风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
5.40
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