化学
厌氧消化
生物转化
产甲烷
无氧运动
微生物代谢
代谢途径
生物化学
环境化学
新陈代谢
铵
乙酸化
工业微生物学
酶
基因组
微生物联合体
微生物种群生物学
活性污泥
废水
细菌
生物反应器
微生物
氯化物
羟基化
氨
氯化铵
生物降解
生物修复
代谢中间体
能源
甲烷八叠球菌
消化(炼金术)
尿素
胺气处理
污水处理
甲烷
作者
Siying Cai,Er Li,Tong Sun,Aoxiang Huang,Yang Zhang,Xuejun Xiong,Boyi Cheng,HongXiang Chai,Junqing Zhang,Junqing Zhang,Jianbo Zhang,Jianbo Zhang,Chengzhi Hu,Weijun Zhang
标识
DOI:10.1021/acs.est.5c10074
摘要
Amine-containing micropollutants (AMPs), a class of structurally diverse polar compounds characterized by one or more amine functional groups, are frequently detected in wastewater sludge. However, the anaerobic transformation of these compounds and their impacts on microbial metabolism during anaerobic digestion (AD) remain poorly understood. In this work, six representative AMPs were selected to cover 16 structurally diverse primary, secondary, tertiary amine, and quaternary ammonium functionalities. α-C hydroxylation and N-acetylation were identified as the dominant initial reactions among the detected transformation products (TP), collectively accounting for 42.6% of all identified TPs. Furthermore, compound-specific differences in metabolic disturbance were observed. Quaternary ammonium compounds, N-dodecyl-N-benzyl- N, N -dimethylammonium chloride (DDBAC) and N, N -Didodecyl- N, N -dimethylammonium chloride (DDDAC) markedly reduced acetate kinase activity by 10.69 and 14.28%, respectively, and resulted in methane production yield reductions of 88.97 and 88.19%. The genome-centric metagenome revealed that exposure to AMPs prompted the reassembly of the microbial community, altered its functional attributes, and disturbed interspecies cross-feeding interactions. Specifically, AMPs triggered a shift in the methanogenic consortium from mixotrophic Methanosarcina flavescens to hydrogenotrophic Methanobacterium sp., owing to the latter’s metabolic versatility, vigorous proliferation, and superior energy conservation. These findings indicated that the chemical properties of amine functional groups have effects on anaerobic biotransformation pathways and microbial energy metabolism, providing mechanistic insight into AMPs toxicity and guiding mitigation strategies to enhance the stability and resilience of full-scale AD systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI