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拓展 2- 氧戊二酸依赖型加氧酶在植物代谢中的作用。

Expanding the roles for 2-oxoglutarate-dependent oxygenases in plant metabolism.

机构信息

Department of Biological Sciences, University of Calgary, 2500 University Drive N.W., Calgary, Alberta T2N 1N4, Canada.

出版信息

Nat Prod Rep. 2018 Aug 15;35(8):721-734. doi: 10.1039/c7np00060j.

DOI:10.1039/c7np00060j
PMID:29488530
Abstract

Covering: up to 2018 2-Oxoglutarate-dependent oxygenases (2ODOs) comprise a large enzyme superfamily in plant genomes, second in size only to the cytochromes P450 monooxygenase (CYP) superfamily. 2ODOs participate in both primary and specialized plant pathways, and their occurrence across all life kingdoms points to an ancient origin. Phylogenetic evidence supports substantial expansion and diversification of 2ODOs following the split from the common ancestor of land plants. More conserved roles for these enzymes include oxidation within hormone metabolism, such as the recently described capacity of Dioxygenase for Auxin Oxidation (DAO) for governing auxin homeostasis. Conserved structural features among 2ODOs has provided a basis for continued investigation into their mechanisms, and recent structural work is expected to illuminate intriguing reactions such as that of 1-aminocyclopropane-1-carboxylic acid oxidase (ACCO). Phylogenetic radiation among this superfamily combined with neo- and subfunctionalization has enabled recruitment to highly specialized pathways, including those yielding medicines, flavours, dyes, poisons, and compounds important for plant-environment interactions. Catalytic versatility of 2ODOs in plants and across broader taxa continues to inspire biochemists tasked with the discovery of new enzymes. This highlight article summarizes recent reports up to 2018 of 2ODOs within plant metabolism. Furthermore, the respective contributions of 2ODOs and other oxidases to natural product biosynthesis are discussed as a framework for continued discovery.

摘要

涵盖

截至 2018 年,2- 酮戊二酸依赖性加氧酶(2ODO)在植物基因组中是一个庞大的酶超家族,仅次于细胞色素 P450 单加氧酶(CYP)超家族。2ODO 参与初级和专门的植物途径,它们在所有生命领域的存在表明其起源古老。系统发育证据支持 2ODO 在后生植物共同祖先分裂后大量扩张和多样化。这些酶更保守的作用包括激素代谢中的氧化,例如最近描述的生长素氧化酶(DAO)对生长素稳态的控制能力。2ODO 之间保守的结构特征为进一步研究其机制提供了基础,最近的结构研究有望阐明有趣的反应,如 1- 氨基环丙烷-1-羧酸氧化酶(ACCO)的反应。该超家族的系统发育辐射加上新功能和亚功能化,使其能够招募到高度专门的途径,包括产生药物、香料、染料、毒素和对植物-环境相互作用重要的化合物的途径。植物和更广泛的分类群中 2ODO 的催化多功能性继续激发着负责发现新酶的生化学家。本文总结了截至 2018 年植物代谢中 2ODO 的最新报告。此外,还讨论了 2ODO 和其他加氧酶对天然产物生物合成的各自贡献,作为持续发现的框架。

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