Enhanced removal of antibiotics and antibiotic resistance genes in a soil microbial fuel cell via in situ remediation of agricultural soils with multiple antibiotics

抗生素 抗生素耐药性 生物降解 环境修复 土壤水分 环境化学 土壤污染 微生物种群生物学 生物修复 微生物燃料电池 磺胺甲恶唑 细菌 化学 微生物学 污染 生物 生态学 有机化学 遗传学 电极 阳极 物理化学
作者
Hai–Liang Song,Chen Zhang,Yuxiang Lu,Hua Li,Yi Shao,Yu-Li Yang
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:829: 154406-154406 被引量:39
标识
DOI:10.1016/j.scitotenv.2022.154406
摘要

Soil microbial fuel cells (MFCs) have been applied for the in situ remediation of soils polluted by single antibiotics. However, the investigation of only single antibiotic pollution has hindered MFC application in real-world soil remediation, where the effects of multiple antibiotics with similar chemical structures on the fate of antibiotics and their corresponding antibiotic resistance genes (ARGs) remain unknown. In this study, antibiotic removal rates, microbial community compositions, metabolite compositions, and ARG abundances were investigated in soil MFCs by adding two commonly used antibiotics (sulfadiazine, SDZ, and sulfamethoxazole, SMX), and comparing them with the addition of only a single antibiotic (SDZ). The antibiotic removal rate was higher in the soil MFC with addition of mixed antibiotics compared to the single antibiotic due to enhanced biodegradation efficiency in both the upper (57.24% of the initial antibiotic concentration) and lower layers (57.07% of the initial concentration) of the antibiotic-polluted soils. Bacterial community diversity in the mixed antibiotic conditions increased, and this likely resulted from the decreased toxicity of intermediates produced during antibiotic biodegradation. Moreover, the addition of mixed antibiotics led to lower risks of ARG release into soil environments, as reflected by higher abundances of host bacteria in the single antibiotic treatment. These results encourage the further development of soil MFC technology for in situ remediation of antibiotic-polluted soils.

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