Liu Yingying, Song Xinshan, Xu Zhongshuo, Wang Yifei, Hou Xiaoxiao, Wang Yuhui, Cao Xin, Wang Wei
College of Environmental Science and Engineering, State Environmental Protection Engineering Center for Pollution Treatment and Control in Textile Industry, Donghua University, Shanghai 201620, China.
College of Environmental Science and Engineering, State Environmental Protection Engineering Center for Pollution Treatment and Control in Textile Industry, Donghua University, Shanghai 201620, China.
Bioresour Technol. 2024 May;400:130689. doi: 10.1016/j.biortech.2024.130689. Epub 2024 Apr 9.
In recent years, manganese (Mn) has emerged as an accelerator for nitrogen metabolism. However, the bioactivity of manganese is limited by the restricted contact between microbes and manganese minerals in the solid phase and by the toxicity of manganese to microbes. To enhance the bioactivity of solid-phase manganese, biomineralized manganese oxide (MnOx) modified by Lactobacillus was introduced. Nitrogen removal performance have confirmed the effective role of biomineralized MnOx in accelerating the removal of total inorganic nitrogen (TIN). Metagenomic analysis has confirmed the enhancement of the nitrogen metabolic pathway and microbial extracellular electron transfer (MEET) in biomineralized MnOx treatment group (BIOA group). Additionally, the enrichment of manganese oxidation and denitrification genus indicates a coupling between nitrogen metabolism and manganese metabolism. One point of views is that biomineralized MnOx-mediated nitrogen transformation processes could serve as a substitute for traditional nitrogen removal processes.
近年来,锰(Mn)已成为氮代谢的促进剂。然而,锰的生物活性受到微生物与固相锰矿物之间有限接触以及锰对微生物毒性的限制。为了提高固相锰的生物活性,引入了经乳酸杆菌修饰的生物矿化氧化锰(MnOx)。脱氮性能证实了生物矿化MnOx在加速去除总无机氮(TIN)方面的有效作用。宏基因组分析证实了生物矿化MnOx处理组(BIOA组)中氮代谢途径和微生物细胞外电子转移(MEET)的增强。此外,锰氧化和反硝化属的富集表明氮代谢与锰代谢之间存在耦合。一种观点认为,生物矿化MnOx介导的氮转化过程可以替代传统的脱氮过程。