Biodegradable microplastics show greater potential than conventional types in facilitating antibiotic resistance gene enrichment and transfer through viral communities

微塑料 溶解循环 基因组 微观世界 抗生素耐药性 人病毒体 微生物种群生物学 微生物遗传学 水平基因转移 生物 噬菌体 微生物群 基因组 微生物学 细菌 丰度(生态学) 群落结构 抵抗性 转录组 土壤微生物学 土壤水分 病毒 流动遗传元素 病毒复制 基因表达 病毒载量 病毒蛋白 相对物种丰度 病毒进化 遗传变异 长尾病毒科 病毒包膜 病毒进入 基因 遗传学
作者
Xiaojing Hu,Haidong Gu,Yongbin Wang,Yingying Xu,Yansheng Li,Zhenhua Yu,Junjie Liu,Jian Jin,Xiaobing Liu,Guanghua Wang
出处
期刊:Environment International [Elsevier BV]
卷期号:204: 109855-109855 被引量:3
标识
DOI:10.1016/j.envint.2025.109855
摘要

Whether and how conventional (CP) and biodegradable microplastics (BP) affect viral communities and virus-carried antibiotic resistance genes (ARGs) in agricultural soils remains largely unknown. Here, we established a soil microcosm incubation with addition of 1 % (w/w) microplastics (MPs) in maize-cultivated soil that had been treated with different fertilizers for over 10 years, and the dynamic variations of viral communities and ARG profiles were investigated using a combination of metagenomic and metatranscriptomic methods. Our results revealed that BP, but not CP, significantly decreased viral α-diversity, changed viral community structure, community resistance and taxonomic turnover in all fertilized treatments. Caudoviricetes was the most dominate viral class and BP significantly increased the abundances of viral families (i.e. Phycodnaviridae) in all fertilized treatments, while CP altered the viral family abundance mainly observed in manure-amended soils. Also, BP was associated with increased ARG α-diversity, altered ARG community structure and community resistance, especially at the transcriptional level. Particularly, BP significantly enriched high-risk ARGs and mobile genetic elements (MGEs) in soils regardless of fertilization regimes. Correlation analysis revealed the important role of lytic viruses in shaping the abundance of high-risk ARGs and MGEs. Furthermore, BP induced more variations in reconstructed metagenome-assembled genome (MAGs), and significantly enriched high-risk ARGs carried by phage genomes. Co-occurrence patterns revealed three Actinobacteriota MAGs as primary viral hosts sharing high-risk ARGs with phages and containing multiple MGEs. Notably, we identified four viral genomes carrying ARG transcripts identical to their hosts. Both CP and BP differentially stimulated ARG expression in these virus-host systems, withmarkedlystronger effects observed in manure-amended soils. In conclusion, this study revealed a high risk of ARG dissemination induced by biodegradable MP residues regardless of fertilization regimes, while conventional MPs strengthen the ARG health risks mainly in manure-amended soils.
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