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基因组挖掘导致杀真菌倍半萜生物合成基因簇的鉴定。

Mining of the Genome Leads to Identification of a Biosynthetic Gene Cluster for Fungicidal Sesquiterpenes.

机构信息

Biotechnological Institute of Chinese Materia Medic, Jinan University, Guangzhou 510632, China.

Roy J. Carver Department of Biochemistry, Biophysics, Molecular Biology, Iowa State University, Ames, Iowa 50011, United States.

出版信息

J Nat Prod. 2021 Oct 22;84(10):2709-2716. doi: 10.1021/acs.jnatprod.1c00588. Epub 2021 Oct 13.

Abstract

Characterization of cryptic biosynthetic gene clusters (BGCs) from microbial genomes has been proven to be a powerful approach to the discovery of new natural products. However, such a genome mining approach to the discovery of bioactive plant metabolites has been muted. The plant BGCs characterized to date encode pathways for antibiotics important in plant defense against microbial pathogens, providing a means to discover such phytoalexins by mining plant genomes. Here is reported the discovery and characterization of a minimal BGC from the medicinal plant , consisting of an adjacent pair of genes encoding a terpene synthase () and cytochrome P450 (). These two enzymes act sequentially, with CrTPS18 acting as a sesquiterpene synthase, producing 5--jinkoheremol (), which CYP71D349 further hydroxylates to debneyol (). Infection studies with maize revealed that and exhibit more potent fungicidal activity than validamycin. Accordingly, this study demonstrates that characterization of such cryptic plant BGCs is a promising strategy for the discovery of potential agrochemical leads. Moreover, despite the observed absence of and in , the observed transcriptional regulation is consistent with their differential fungicidal activity, suggesting that such conditional coexpression may be sufficient to drive BGC assembly in plants.

摘要

从微生物基因组中鉴定隐匿生物合成基因簇(BGC)已被证明是发现新天然产物的有力方法。然而,这种从植物基因组中发现生物活性代谢产物的方法却一直没有得到充分利用。迄今为止,所鉴定的植物 BGC 编码了抗生素途径,这些抗生素在植物抵御微生物病原体的防御中很重要,为通过挖掘植物基因组来发现此类植物抗毒素提供了一种手段。本研究报告了从药用植物中发现和鉴定的一个最小 BGC,该 BGC 由一对相邻的基因组成,编码萜烯合酶()和细胞色素 P450()。这两种酶依次作用,CrTPS18 作为倍半萜合酶,产生 5--jinkoheremol (),CYP71D349 进一步将其羟基化为 debneyol ()。用玉米进行的感染研究表明,和比 validamycin 具有更强的杀菌活性。因此,本研究表明,鉴定此类隐匿的植物 BGC 是发现潜在农用化学品先导化合物的有前途的策略。此外,尽管在中观察到和的缺失,但观察到的转录调控与其差异杀菌活性一致,表明这种条件性共表达可能足以在植物中驱动 BGC 组装。

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