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细胞色素 P450 酶:植物二萜多样性的驱动力。

Cytochrome P450 enzymes: A driving force of plant diterpene diversity.

机构信息

Department of Cell and Metabolic Biology, Leibniz Institute of Plant Biochemistry, Weinberg 3, 06120 Halle, Germany.

Department of Cell and Metabolic Biology, Leibniz Institute of Plant Biochemistry, Weinberg 3, 06120 Halle, Germany.

出版信息

Phytochemistry. 2019 May;161:149-162. doi: 10.1016/j.phytochem.2018.12.003. Epub 2019 Feb 5.

Abstract

In plant terpene biosynthesis, oxidation of the hydrocarbon backbone produced by terpene synthases is typically carried out by cytochrome P450 oxygenases (CYPs). The modifications introduced by CYPs include hydroxylations, sequential oxidations at one position and ring rearrangements and closures. These reactions significantly expand the structural diversity of terpenoids, but also provide anchoring points for further decorations by various transferases. In recent years, there has been a significant increase in reports of CYPs involved in plant terpene pathways. Plant diterpenes represent an important class of metabolites that includes hormones and a number of industrially relevant compounds such as pharmaceutical, aroma or food ingredients. In this review, we provide a comprehensive survey on CYPs reported to be involved in plant diterpene biosynthesis to date. A phylogenetic analysis showed that only few CYP clans are represented in diterpene biosynthesis, namely CYP71, CYP85 and CYP72. Remarkably few CYP families and subfamilies within those clans are involved, indicating specific expansion of these clades in plant diterpene biosynthesis. Nonetheless, the evolutionary trajectory of CYPs of specialized diterpene biosynthesis is diverse. Some are recently derived from gibberellin biosynthesis, while others have a more ancient history with recent expansions in specific plant families. Among diterpenoids, labdane-related diterpenoids represent a dominant class. The availability of CYPs from diverse plant species able to catalyze oxidations in specific regions of the labdane-related backbones provides opportunities for combinatorial biosynthesis to produce novel diterpene compounds that can be screened for biological activities of interest.

摘要

在植物萜类生物合成中,萜烯合酶产生的烃骨架的氧化通常由细胞色素 P450 氧化酶(CYPs)进行。CYPs 引入的修饰包括羟基化、一个位置的连续氧化、环重排和闭合。这些反应显著扩展了萜类化合物的结构多样性,但也为各种转移酶进一步修饰提供了锚定点。近年来,涉及植物萜烯途径的 CYPs 的报道显著增加。植物二萜代表了一类重要的代谢物,包括激素和许多工业相关的化合物,如药物、香料或食品成分。在这篇综述中,我们提供了迄今为止报道的参与植物二萜生物合成的 CYP 的全面调查。系统发育分析表明,只有少数 CYP 族参与二萜生物合成,即 CYP71、CYP85 和 CYP72。参与其中的 CYP 家族和亚家族数量很少,表明这些族在植物二萜生物合成中特异性扩张。尽管如此,专门的二萜生物合成 CYP 的进化轨迹是多样的。有些是最近从赤霉素生物合成中衍生出来的,而另一些则具有更古老的历史,在特定的植物科中最近有扩张。在二萜类化合物中,贝壳杉烷相关二萜类化合物是主要的一类。来自多种植物物种的 CYP 可用性能够催化贝壳杉烷相关骨架特定区域的氧化,为组合生物合成提供了机会,以产生可用于筛选感兴趣的生物活性的新型二萜化合物。

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