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Microbiology combined with metabonomics revealing the response of soil microorganisms and their metabolic functions exposed to phthalic acid esters

邻苯二甲酸盐 邻苯二甲酸 环境化学 微生物 代谢途径 代谢物 微塑料 新陈代谢 微生物降解 邻苯二甲酸二丁酯 微生物代谢 化学 代谢组学 微生物种群生物学 增塑剂 细菌 土壤微生物学 食品科学 生物 生物化学 有机化学 色谱法 遗传学
作者
Changcai Wu,Yajie Ma,Dan Wang,Yongpan Shan,Xianpeng Song,Hongyan Hu,Xiangliang Ren,Xiaoyan Ma,Junyu Luo,Jinjie Cui,Yan Ma
出处
期刊:Ecotoxicology and Environmental Safety [Elsevier BV]
卷期号:233: 113338-113338 被引量:38
标识
DOI:10.1016/j.ecoenv.2022.113338
摘要

As microplastics became the focus of global attention, the hazards of plastic plasticizers (PAEs) have gradually attracted people's attention. Agricultural soil is one of its hardest hit areas. However, current research of its impact on soil ecology only stops at the microorganism itself, and there is still lack of conclusion on the impact of soil metabolism. To this end, three most common PAEs (Dimethyl phthalate: DMP, Dibutyl phthalate: DBP and Bis (2-ethylhexyl) phthalate: DEHP) were selected and based on high-throughput sequencing and metabolomics platforms, the influence of PAEs residues on soil metabolic functions were revealed for the first time. PAEs did not significantly changed the alpha diversity of soil bacteria in the short term, but changed their community structure and interfered with the complexity of community symbiosis network. Metabolomics indicated that exposure to DBP can significantly change the soil metabolite profile. A total of 172 differential metabolites were found, of which 100 were up-regulated and 72 were down-regulated. DBP treatment interfered with 43 metabolic pathways including basic metabolic processes. In particular, it interfered with the metabolism of residual steroids and promoted the metabolism of various plasticizers. In addition, through differential labeling and collinear analysis, some bacteria with the degradation potential of PAEs, such as Gordonia, were excavated.
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