Determining the Contribution of Micro/Nanoplastics to Antimicrobial Resistance: Challenges and Perspectives

微塑料 生化工程 非生物成分 原核生物 基因组 生物 环境科学 生态学 工程类 细菌 基因 遗传学 生物化学
作者
Gaoyang Luo,Bin Liang,Hanlin Cui,Yuanyuan Kang,Xu Zhou,Yu Tao,Lu Lu,Fan Lü,Jianhua Guo,Aijie Wang,Shuhong Gao
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:57 (33): 12137-12152 被引量:24
标识
DOI:10.1021/acs.est.3c01128
摘要

Microorganisms colonizing the surfaces of microplastics form a plastisphere in the environment, which captures miscellaneous substances. The plastisphere, owning to its inherently complex nature, may serve as a "Petri dish" for the development and dissemination of antibiotic resistance genes (ARGs), adding a layer of complexity in tackling the global challenge of both microplastics and ARGs. Increasing studies have drawn insights into the extent to which the proliferation of ARGs occurred in the presence of micro/nanoplastics, thereby increasing antimicrobial resistance (AMR). However, a comprehensive review is still lacking in consideration of the current increasingly scattered research focus and results. This review focuses on the spread of ARGs mediated by microplastics, especially on the challenges and perspectives on determining the contribution of microplastics to AMR. The plastisphere accumulates biotic and abiotic materials on the persistent surfaces, which, in turn, offers a preferred environment for gene exchange within and across the boundary of the plastisphere. Microplastics breaking down to smaller sizes, such as nanoscale, can possibly promote the horizontal gene transfer of ARGs as environmental stressors by inducing the overgeneration of reactive oxygen species. Additionally, we also discussed methods, especially quantitatively comparing ARG profiles among different environmental samples in this emerging field and the challenges that multidimensional parameters are in great necessity to systematically determine the antimicrobial dissemination risk in the plastisphere. Finally, based on the biological sequencing data, we offered a framework to assess the AMR risks of micro/nanoplastics and biocolonizable microparticles that leverage multidimensional AMR-associated messages, including the ARGs' abundance, mobility, and potential acquisition by pathogens.
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