Eawag, Swiss Federal Institute of Aquatic Science and Technology , 8600 Dübendorf, Switzerland.
Department of Environmental Systems Science (D-USYS), ETH Zürich , 8092 Zürich, Switzerland.
Environ Sci Technol. 2016 Mar 15;50(6):2908-20. doi: 10.1021/acs.est.5b05186. Epub 2016 Feb 26.
The main removal process for polar organic micropollutants during activated sludge treatment is biotransformation, which often leads to the formation of stable transformation products (TPs). Because the analysis of TPs is challenging, the use of pathway prediction systems can help by generating a list of suspected TPs. To complete and refine pathway prediction, comprehensive biotransformation studies for compounds exhibiting pertinent functional groups under environmentally relevant conditions are needed. Because many polar organic micropollutants present in wastewater contain one or several amine functional groups, we systematically explored amine biotransformation by conducting experiments with 19 compounds that contained 25 structurally diverse primary, secondary, and tertiary amine moieties. The identification of 144 TP candidates and the structure elucidation of 101 of these resulted in a comprehensive view on initial amine biotransformation reactions. The reactions with the highest relevance were N-oxidation, N-dealkylation, N-acetylation, and N-succinylation. Whereas many of the observed reactions were similar to those known for the mammalian metabolism of amine-containing xenobiotics, some N-acylation reactions were not previously described. In general, different reactions at the amine functional group occurred in parallel. Finally, recommendations on how these findings can be implemented to improve microbial pathway prediction of amine-containing micropollutants are given.
在活性污泥处理过程中,极性有机微污染物的主要去除过程是生物转化,这往往会导致稳定的转化产物(TPs)的形成。由于 TPs 的分析具有挑战性,因此可以使用途径预测系统通过生成疑似 TPs 的列表来帮助完成和改进途径预测。为了完成和完善途径预测,需要在环境相关条件下对具有相关官能团的化合物进行综合生物转化研究。由于废水中存在的许多极性有机微污染物都含有一个或多个胺官能团,因此我们通过对 19 种含有 25 种结构不同的伯、仲和叔胺部分的化合物进行实验,系统地探索了胺的生物转化。共鉴定出 144 种 TP 候选物,并对其中 101 种进行了结构阐明,从而全面了解了初始胺生物转化反应。相关性最高的反应是 N-氧化、N-脱烷基化、N-乙酰化和 N-琥珀酰化。虽然许多观察到的反应与哺乳动物对含胺外源化合物的代谢相似,但有些 N-酰化反应以前并未描述过。一般来说,胺官能团上的不同反应是平行发生的。最后,就如何将这些发现应用于改进含胺微污染物的微生物途径预测提出了建议。