Xue Pengfei, Liu Xiaowei, Jia Hao, Yuan Haiyue, Liu Bingjie, Zhang Jingran, He Zeying
Key Laboratory for Environmental Factors Control of Agro-product Quality Safety, Ministry of Agriculture and Rural Affairs, Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin 300191, PR China.
SCIEX, Analytical Instrument Trading Co. Ltd., Beijing 100015, PR China.
Environ Int. 2022 Sep;167:107442. doi: 10.1016/j.envint.2022.107442. Epub 2022 Jul 30.
The environmental impact of the chiral fungicide epoxiconazole and its chiral transformation products (TPs) on non-target organisms and the environment has become a significant concern due to its widespread use in agricultural practice. Enantioselectivity studies of parent contaminants cannot adequately assess the complexity of its chiral TPs in the environment. This study aimed to investigate the environmental behavior of epoxiconazole in an earthworm-soil system. 2S,3R-(-)-epoxiconazole was preferentially enriched in earthworms during the accumulation phase (p < 0.05), but no enantioselectivity was observed during the elimination phase. One methoxylated and four hydroxylated chiral TPs were identified in soil, earthworm, and excrement. The epoxy ring hydroxylated TP and methoxylated TP of epoxiconazole were discovered for the first time in the environment. The chemically specific enantioselectivity with enantiomer fraction (EF) > 0.8 was observed for the TPs in different matrices. The CYP450 monooxygenase of earthworm was significant activated. In vitro enzyme metabolism experiments (earthworm microsomes and recombinant CYP450 enzymes CYP2A6, CYP 2C9, and CYP 3A4) were carried out to further explain the biotransformation mechanism of epoxiconazole in earthworm. This study provides new evidence of enantiomeric biotransformation of chiral fungicide epoxiconazole in the earthworm-soil system and could provide valuable insights into their environmental risk assessment.
由于手性杀菌剂环氧唑及其手性转化产物(TPs)在农业实践中的广泛使用,其对非靶标生物和环境的影响已成为一个重大问题。母体污染物的对映体选择性研究无法充分评估其手性TPs在环境中的复杂性。本研究旨在调查环氧唑在蚯蚓 - 土壤系统中的环境行为。在积累阶段,2S,3R-(-)-环氧唑优先在蚯蚓中富集(p < 0.05),但在消除阶段未观察到对映体选择性。在土壤、蚯蚓和粪便中鉴定出一种甲氧基化和四种羟基化的手性TPs。环氧唑的环氧环羟基化TP和甲氧基化TP首次在环境中被发现。在不同基质中观察到TPs具有化学特异性对映体选择性,对映体分数(EF)> 0.8。蚯蚓的CYP450单加氧酶被显著激活。进行了体外酶代谢实验(蚯蚓微粒体和重组CYP450酶CYP2A6、CYP 2C9和CYP 3A4)以进一步解释环氧唑在蚯蚓中的生物转化机制。本研究为手性杀菌剂环氧唑在蚯蚓 - 土壤系统中的对映体生物转化提供了新证据,并可为其环境风险评估提供有价值的见解。