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Multiple metabolic pathways of enrofloxacin by Lolium perenne L.: Ecotoxicity, biodegradation, and key driven genes

代谢途径 生物降解 化学 生物化学 多年生黑麦草 单加氧酶 细胞色素P450 羟基化 转录组 生态毒性 双加氧酶 基因 生物 基因表达 植物 毒性 禾本科 有机化学
作者
Chen-Yu Zhao,Shaoguo Ru,Pengfei Cui,Xin Qi,Mayur B. Kurade,Swapnil M. Patil,Byong‐Hun Jeon,Jiu-Qiang Xiong
出处
期刊:Water Research [Elsevier BV]
卷期号:202: 117413-117413 被引量:97
标识
DOI:10.1016/j.watres.2021.117413
摘要

Contamination of fluoroquinolones (FQs) are of emerging concerns because of their adverse effects on environment and humans. This study investigated the ecotoxicological effects, biodegradation, and multiple metabolic pathways of a frequently found FQ, enrofloxacin (ENR) by ryegrass (Lolium perenne L.). Key metabolic genes for driving the metabolism of ENR have been identified using transcriptome profiling of L. perenne and gene network analysis. Toxicity of ENR on ryegrass has been evaluated according to the morphological changes, lipid peroxidation content, and antioxidant enzymatic activities. Moreover, there was 94.33%, 71.58%, 57.22%, and 55.23% removal of 1, 10, 50 and 100 mg L−1 ENR, respectively, which was mainly achieved by biodegradation according to the mass balance. A biodegradation pathway has been proposed by incorporating mass spectrums of extracted ENR intermediates with their formation dynamics. Analysis of differentially expressed genes (DEGs) and their network unraveled that the genes encoding monooxygenase, oxidative carboxylase, methyltransferase, lyase, hydroxylase, dehydrogenase, and peroxidase were the key functional genes. These enzymes can induce di/hydroxylation, decarboxylation, methylation, and bond and ring cleavage of ENR for its effective degradation. This study demonstrated that ryegrass can be used for efficient treatment of ENR polluted water and extended the understanding of the molecular mechanism of antibiotics’ biodegradation in plants.
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