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Role of the Colletotrichum acutatum sesquiterpene synthase CaTPS in the biosynthesis of sesquiterpenoids

机译:番茄炭疽病倍半萜合酶CaTPS在倍半萜生物合成中的作用

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Colletotrichum acutatum is a major fungal pathogen of fruit crops, which causes severe yield losses in strawberry production. A potential key factor in plant–pathogen interactions is fungal sesquiterpenoids which have mycotoxic and phytotoxic activities. The first committed step in sesquiterpenoid biosynthesis is performed by sesquiterpene synthases (TPS). Only a few TPSs have been functionally characterized from filamentous fungi and none from the genus Colletotrichum. Despite being an important fungal pathogen to agriculture, it is poorly understood at the molecular and chemical levels. The terpenoid biochemistry in Coll. acutatum strain SA 0-1 was studied and one Coll. acutatum TPS (CaTPS) was successfully cloned and characterized in yeast. CaTPS catalyses the biosynthesis of multiple sesquiterpenoids. The two major products are β-caryophyllene and an unidentified sesquiterpenoid along with α-humulene as one of the minor sesquiterpenoid products. These products were also secreted by the fungus in strawberry fruit medium along with several other sesquiterpenoids indicating other TPSs are active during in vitro growth. β-Caryophyllene and α-humulene are known cytotoxic products important for ecological interactions and are produced by SA 0-1. Interestingly, a gene expression analysis using quantitative real-time PCR revealed a significant increase in expression of CaTPS during strawberry fruit infection, thus indicating that it could be involved in fruit infection. This is, we believe, the first characterization of TPS in Colletotrichum spp. and terpenoid profiles of Coll. acutatum, which could facilitate studies on the role of terpenoids in the ecology of Coll. acutatum.
机译:切菜炭疽菌是水果作物的主要真菌病原体,会导致草莓产量严重下降。植物与病原体相互作用的潜在关键因素是真菌倍半萜,它们具有霉菌毒素和植物毒素活性。在倍半萜生物合成中的第一步是通过倍半萜合酶(TPS)进行的。从丝状真菌的功能上仅鉴定了少数TPS,而从炭疽菌属中没有鉴定出TPS。尽管它是农业重要的真菌病原体,但在分子和化学水平上却鲜为人知。 Coll中的萜类生物化学。研究了金丝桃属菌株SA 0-1和一个Coll。酵母属植物TPS(CaTPS)已成功克隆并在酵母中鉴定。 CaTPS催化多种倍半萜的生物合成。两个主要产物是β-石竹烯和一种未鉴定的倍半萜,以及作为次要倍半萜产物之一的α-腐殖质。这些产物也被草莓果实培养基中的真菌和其他几种倍半萜类物质分泌,表明其他TPS在体外生长过程中具有活性。 β-石竹烯和α-腐草烯是已知的对生态相互作用重要的细胞毒性产物,由SA 0-1产生。有趣的是,使用定量实时PCR进行的基因表达分析表明,草莓果实感染期间CaTPS的表达显着增加,从而表明它可能参与了果实感染。我们认为,这是炭疽菌中TPS的第一个特征。和萜类化合物的轮廓。 cut草,可能有助于研究萜类化合物在Coll生态学中的作用。 cut草。

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