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从头生物合成生物营养型真菌麦角菌中的细胞分裂素。

De novo biosynthesis of cytokinins in the biotrophic fungus Claviceps purpurea.

机构信息

Institute of Plant Biology and Biotechnology, Westfälische Wilhelms-University Münster, Schlossplatz 8, 48143, Münster, Germany.

Centre of the Region Haná for Biotechnological and Agricultural Research, Palacký University & Institute of Experimental Botany AS CR, Šlechtitelů 11, 78371, Olomouc, Czech Republic.

出版信息

Environ Microbiol. 2015 Aug;17(8):2935-51. doi: 10.1111/1462-2920.12838. Epub 2015 Apr 15.

Abstract

Disease symptoms of some phytopathogenic fungi are associated with changes in cytokinin (CK) levels. Here, we show that the CK profile of ergot-infected rye plants is also altered, although no pronounced changes occur in the expression of the host plant's CK biosynthesis genes. Instead, we demonstrate a clearly different mechanism: we report on the first fungal de novo CK biosynthesis genes, prove their functions and constitute a biosynthetic pathway. The ergot fungus Claviceps purpurea produces substantial quantities of CKs in culture and, like plants, expresses enzymes containing the isopentenyltransferase and lonely guy domains necessary for de novo isopentenyladenine production. Uniquely, two of these domains are combined in one bifunctional enzyme, CpIPT-LOG, depicting a novel and potent mechanism for CK production. The fungus also forms trans-zeatin, a reaction catalysed by a CK-specific cytochrome P450 monooxygenase, which is encoded by cpp450 forming a small cluster with cpipt-log. Deletion of cpipt-log and cpp450 did not affect virulence of the fungus, but Δcpp450 mutants exhibit a hyper-sporulating phenotype, implying that CKs are environmental factors influencing fungal development.

摘要

一些植物病原真菌的疾病症状与细胞分裂素 (CK) 水平的变化有关。在这里,我们表明,受麦角菌感染的黑麦植物的 CK 谱也发生了改变,尽管宿主植物 CK 生物合成基因的表达没有明显变化。相反,我们证明了一种截然不同的机制:我们报告了第一个真菌从头合成 CK 的基因,证明了它们的功能,并构建了一个生物合成途径。麦角菌 Claviceps purpurea 在培养中产生大量的 CK,并且像植物一样,表达含有异戊烯基转移酶和孤独侠结构域的酶,这些酶是从头生产异戊烯腺嘌呤所必需的。独特的是,这两个结构域结合在一个双功能酶 CpIPT-LOG 中,描绘了一种新的、有效的 CK 生产机制。真菌还形成了玉米素,这是一种由 CK 特异性细胞色素 P450 单加氧酶催化的反应,该酶由 cpp450 编码,并与 cpipt-log 形成一个小簇。CpIPT-LOG 和 cpp450 的缺失并不影响真菌的毒力,但Δcpp450 突变体表现出超孢子形成的表型,这意味着 CK 是影响真菌发育的环境因素。

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