吡啶、喹啉、吖啶及其衍生物在好氧和厌氧条件下的微生物代谢。

JEAN-PIERRE Kaiser, Yucheng Feng, J. Bollag
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引用次数: 255

摘要

我们对吡啶和氮杂芳烃代谢途径的回顾表明,杂环芳烃的生物降解在好氧和厌氧条件下都发生。根据环境条件,不同类型的细菌、真菌和酶参与这些化合物的降解过程。我们的综述表明,不同的生物体使用不同的途径来生物转化底物。我们的回顾还表明,吡啶衍生物的转化速率依赖于取代基。例如,吡啶羧酸的转化率最高,其次是单羟基吡啶、甲基吡啶、氨基吡啶和卤代吡啶。通过代谢物的分离,可以证明各种杂环芳香族化合物的矿化途径。通过使用14c标记的底物,可以证明特定杂环化合物的环裂变发生在环的特定位置。此外,许多研究人员已经能够分离和表征参与这些化合物或其衍生物转化的微生物甚至酶。在涉及18O标记以及使用辅助因子和辅酶的研究中,有可能证明特定的酶(例如,单加氧酶或双加氧酶)参与特定的降解步骤。通过使用H2 18O,可以证明在某些转化反应中,氧来源于水,因此这些反应也可能在厌氧条件下发生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microbial metabolism of pyridine, quinoline, acridine, and their derivatives under aerobic and anaerobic conditions.
Our review of the metabolic pathways of pyridines and aza-arenes showed that biodegradation of heterocyclic aromatic compounds occurs under both aerobic and anaerobic conditions. Depending upon the environmental conditions, different types of bacteria, fungi, and enzymes are involved in the degradation process of these compounds. Our review indicated that different organisms are using different pathways to biotransform a substrate. Our review also showed that the transformation rate of the pyridine derivatives is dependent on the substituents. For example, pyridine carboxylic acids have the highest transformation rate followed by mono-hydroxypyridines, methylpyridines, aminopyridines, and halogenated pyridines. Through the isolation of metabolites, it was possible to demonstrate the mineralization pathway of various heterocyclic aromatic compounds. By using 14C-labeled substrates, it was possible to show that ring fission of a specific heterocyclic compound occurs at a specific position of the ring. Furthermore, many researchers have been able to isolate and characterize the microorganisms or even the enzymes involved in the transformation of these compounds or their derivatives. In studies involving 18O labeling as well as the use of cofactors and coenzymes, it was possible to prove that specific enzymes (e.g., mono- or dioxygenases) are involved in a particular degradation step. By using H2 18O, it could be shown that in certain transformation reactions, the oxygen was derived from water and that therefore these reactions might also occur under anaerobic conditions.
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