Key Laboratory of Wetland Ecology and Environment, State Key Laboratory of Black Soils Conservation and Utilization, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun 130102, China.
Key Laboratory of Wetland Ecology and Environment, State Key Laboratory of Black Soils Conservation and Utilization, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun 130102, China; University of Chinese Academy of Sciences, Beijing 100049, China.
J Hazard Mater. 2024 Dec 5;480:135797. doi: 10.1016/j.jhazmat.2024.135797. Epub 2024 Sep 12.
Bensulfuron-methyl (BSM) is a typical broad-spectrum sulfonylurea herbicide and the runoff of BSM residues from agricultural regions poses a significant threat to the ecosystem. Here we develop a bacteria-material hybrid system constructed by Acinetobacter YH0317 and Mg(NO) modified biochar (MBC) for efficiently degrading BSM under various conditions including pH and temperature. Results showed that BSM biodegradation efficiency by YH0317&MBC (96.7 %) was significantly higher than YH0317&BC (79.5 %) and YH0317 (43.9 %) at 15 °C after 7 d of incubation. The addition of MBC significantly increased the reactive oxygen species (ROS) level, which was significantly higher than group YH0317. Moreover, the bacterial viability, extracellular polymeric substances (EPS) production, and membrane permeability of YH0317 were also enhanced with the addition of MBC. The electron paramagnetic resonance (EPR) and quenching experiments revealed that singlet oxygen (O) was the dominant active substance produced by MBC. The YH0317&MBC could effectively remove the BSM, and reduce the oxidative stress to soybean, which was beneficial to the growth of soybean through hydroponic experiment. This study establishes a microorganism-material system that efficiently removes BSM in aquatic environments and emphasizes the importance of ROS in pollution removal by the hybrid system.
双磺酰脲类除草剂甲磺隆(BSM)是一种典型的广谱磺酰脲类除草剂,其残留在农业区的径流对生态系统构成了重大威胁。在这里,我们开发了一种由不动杆菌 YH0317 和 Mg(NO)改性生物炭(MBC)构建的细菌-材料混合系统,用于在包括 pH 和温度在内的各种条件下高效降解 BSM。结果表明,在 15°C 下孵育 7 天后,YH0317&MBC(96.7%)对 BSM 的生物降解效率明显高于 YH0317&BC(79.5%)和 YH0317(43.9%)。MBC 的添加显著增加了活性氧(ROS)水平,明显高于 YH0317 组。此外,MBC 的添加还增强了 YH0317 的细菌活力、胞外聚合物(EPS)产生和膜通透性。电子顺磁共振(EPR)和猝灭实验表明,单线态氧(O)是 MBC 产生的主要活性物质。YH0317&MBC 可有效去除 BSM,并减轻其对大豆的氧化应激,通过水培实验有利于大豆的生长。本研究建立了一种在水环境污染中有效去除 BSM 的微生物-材料系统,并强调了混合系统中 ROS 在去除污染中的重要性。