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CYP712K4 催化了美登木醌甲醚三萜类生物合成途径中冬凌草甲素的 C-29 氧化。

CYP712K4 Catalyzes the C-29 Oxidation of Friedelin in the Maytenus ilicifolia Quinone Methide Triterpenoid Biosynthesis Pathway.

机构信息

Department of Plant Biotechnology and Bioinformatics, Ghent University, Ghent, Belgium.

VIB Center for Plant Systems Biology, Ghent, Belgium.

出版信息

Plant Cell Physiol. 2019 Nov 1;60(11):2510-2522. doi: 10.1093/pcp/pcz144.

Abstract

The native Brazilian plant Maytenus ilicifolia accumulates a set of quinone methide triterpenoids with important pharmacological properties, of which maytenin, pristimerin and celastrol accumulate exclusively in the root bark of this medicinal plant. The first committed step in the quinone methide triterpenoid biosynthesis is the cyclization of 2,3-oxidosqualene to friedelin, catalyzed by the oxidosqualene cyclase friedelin synthase (FRS). In this study, we produced heterologous friedelin by the expression of M. ilicifolia FRS in Nicotiana benthamiana leaves and in a Saccharomyces cerevisiae strain engineered using CRISPR/Cas9. Furthermore, friedelin-producing N. benthamiana leaves and S. cerevisiae cells were used for the characterization of CYP712K4, a cytochrome P450 from M. ilicifolia that catalyzes the oxidation of friedelin at the C-29 position, leading to maytenoic acid, an intermediate of the quinone methide triterpenoid biosynthesis pathway. Maytenoic acid produced in N. benthamiana leaves was purified and its structure was confirmed using high-resolution mass spectrometry and nuclear magnetic resonance analysis. The three-step oxidation of friedelin to maytenoic acid by CYP712K4 can be considered as the second step of the quinone methide triterpenoid biosynthesis pathway, and may form the basis for further discovery of the pathway and heterologous production of friedelanes and ultimately quinone methide triterpenoids.

摘要

原产于巴西的植物 Maytenus ilicifolia 积累了一组具有重要药理性质的醌甲醚三萜类化合物,其中 maytenin、pristimerin 和 celastrol 仅在这种药用植物的根皮中积累。醌甲醚三萜类化合物生物合成的第一步是 2,3-氧化角鲨烯环化生成法呢醇,由角鲨烯环化酶法呢醇合酶(FRS)催化。在这项研究中,我们通过在 Nicotiana benthamiana 叶片和使用 CRISPR/Cas9 工程改造的酿酒酵母菌株中表达 M. ilicifolia FRS 来产生异源法呢醇。此外,使用产生法呢醇的 N. benthamiana 叶片和酿酒酵母细胞来表征 CYP712K4,这是一种来自 M. ilicifolia 的细胞色素 P450,它催化法呢醇在 C-29 位的氧化,生成 maytenoic acid,这是醌甲醚三萜类化合物生物合成途径的中间产物。在 N. benthamiana 叶片中产生的 maytenoic acid 被纯化,并通过高分辨率质谱和核磁共振分析确认其结构。CYP712K4 将法呢醇氧化为 maytenoic acid 的三步反应可以被认为是醌甲醚三萜类化合物生物合成途径的第二步,并且可能为进一步发现该途径以及异源生产 friedelanes 和最终醌甲醚三萜类化合物奠定基础。

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