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细菌氧化膦酸途径的功能重要性。

The functional importance of bacterial oxidative phosphonate pathways.

作者信息

Pallitsch Katharina, Zechel David L

机构信息

Institute of Organic Chemistry, Faculty of Chemistry, University of Vienna, Währingerstraße 38, 1090 Vienna.

Department of Chemistry, Queen's University, Kingston, Ontario, Canada.

出版信息

Biochem Soc Trans. 2023 Apr 26;51(2):487-499. doi: 10.1042/BST20220479.

Abstract

Organophosphonates (Pns) are a unique class of natural products characterized by a highly stable C-P bond. Pns exhibit a wide array of interesting structures as well as useful bioactivities ranging from antibacterial to herbicidal. More structurally simple Pns are scavenged and catabolized by bacteria as a source of phosphorus. Despite their environmental and industrial importance, the pathways involved in the metabolism of Pns are far from being fully elucidated. Pathways that have been characterized often reveal unusual chemical transformations and new enzyme mechanisms. Among these, oxidative enzymes play an outstanding role during the biosynthesis and degradation of Pns. They are to a high extent responsible for the structural diversity of Pn secondary metabolites and for the break-down of both man-made and biogenic Pns. Here, we review our current understanding of the importance of oxidative enzymes for microbial Pn metabolism, discuss the underlying mechanistic principles, similarities, and differences between pathways. This review illustrates Pn biochemistry to involve a mix of classical redox biochemistry and unique oxidative reactions, including ring formations, rearrangements, and desaturations. Many of these reactions are mediated by specialized iron-dependent oxygenases and oxidases. Such enzymes are the key to both early pathway diversification and late-stage functionalization of complex Pns.

摘要

有机膦酸盐(Pns)是一类独特的天然产物,其特征在于具有高度稳定的碳 - 磷键。Pns展现出各种各样有趣的结构以及从抗菌到除草等多种有用的生物活性。结构较为简单的Pns会被细菌作为磷源清除和分解代谢。尽管它们在环境和工业方面具有重要意义,但参与Pns代谢的途径远未得到充分阐明。已被表征的途径常常揭示出不寻常的化学转化和新的酶作用机制。其中,氧化酶在Pns的生物合成和降解过程中发挥着突出作用。它们在很大程度上决定了Pn次级代谢产物的结构多样性以及人造和生物源Pns的分解。在此,我们综述了目前对氧化酶在微生物Pn代谢中的重要性的理解,讨论了潜在的作用机制原理、不同途径之间的异同。这篇综述表明Pn生物化学涉及经典氧化还原生物化学与独特氧化反应的混合,包括环形成、重排和去饱和反应。许多此类反应由特殊的铁依赖性加氧酶和氧化酶介导。这些酶是复杂Pns早期途径多样化和后期功能化的关键。

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