Microplastic diversity increases the abundance of antibiotic resistance genes in soil

IF 3.784 3区 化学 Q1 Chemistry
Yi-Fei Wang, Yan-Jie Liu, Yan-Mei Fu, Jia-Yang Xu, Tian-Lun Zhang, Hui-Ling Cui, Min Qiao, Matthias C. Rillig, Yong-Guan Zhu, Dong Zhu
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Abstract

The impact of microplastics on antibiotic resistance has attracted widespread attention. However, previous studies primarily focused on the effects of individual microplastics. In reality, diverse microplastic types accumulate in soil, and it remains less well studied whether microplastic diversity (i.e., variations in color, shape or polymer type) can be an important driver of increased antibiotic resistance gene (ARG) abundance. Here, we employed microcosm studies to investigate the effects of microplastic diversity on soil ARG dynamics through metagenomic analysis. Additionally, we evaluated the associated potential health risks by profiling virulence factor genes (VFGs) and mobile genetic elements (MGEs). Our findings reveal that as microplastic diversity increases, there is a corresponding rise in the abundance of soil ARGs, VFGs and MGEs. We further identified microbial adaptive strategies involving genes (changed genetic diversity), community (increased specific microbes), and functions (enriched metabolic pathways) that correlate with increased ARG abundance and may thus contribute to ARG dissemination. Additional global change factors, including fungicide application and plant diversity reduction, also contributed to elevated ARG abundance. Our findings suggest that, in addition to considering contamination levels, it is crucial to monitor microplastic diversity in ecosystems due to their potential role in driving the dissemination of antibiotic resistance through multiple pathways.

Abstract Image

微塑料多样性增加了土壤中抗生素抗性基因的丰度
微塑料对抗生素耐药性的影响已引起广泛关注。然而,以往的研究主要集中于单个微塑料的影响。实际上,不同类型的微塑料会在土壤中积累,而微塑料的多样性(即颜色、形状或聚合物类型的变化)是否会成为抗生素耐药基因(ARG)丰度增加的重要驱动因素,目前的研究还比较少。在这里,我们利用微宇宙研究,通过元基因组分析来研究微塑料多样性对土壤 ARG 动态的影响。此外,我们还通过分析毒力因子基因(VFGs)和移动遗传因子(MGEs)评估了相关的潜在健康风险。我们的研究结果表明,随着微塑料多样性的增加,土壤中 ARGs、VFGs 和 MGEs 的丰度也相应增加。我们进一步确定了涉及基因(遗传多样性改变)、群落(特定微生物增加)和功能(代谢途径丰富)的微生物适应策略,这些策略与 ARG 丰度的增加相关,因此可能有助于 ARG 的传播。其他全球变化因素,包括杀真菌剂的施用和植物多样性的减少,也导致了 ARG 丰度的提高。我们的研究结果表明,除了考虑污染水平外,监测生态系统中微塑料的多样性也至关重要,因为它们可能通过多种途径推动抗生素耐药性的传播。
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来源期刊
ACS Combinatorial Science
ACS Combinatorial Science CHEMISTRY, APPLIED-CHEMISTRY, MEDICINAL
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: The Journal of Combinatorial Chemistry has been relaunched as ACS Combinatorial Science under the leadership of new Editor-in-Chief M.G. Finn of The Scripps Research Institute. The journal features an expanded scope and will build upon the legacy of the Journal of Combinatorial Chemistry, a highly cited leader in the field.
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