首页> 外文OA文献 >Alkaloid Cluster Gene ccsA of the Ergot Fungus Claviceps purpurea Encodes Chanoclavine I Synthase, a Flavin Adenine Dinucleotide-Containing Oxidoreductase Mediating the Transformation of N-Methyl-Dimethylallyltryptophan to Chanoclavine I ▿
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Alkaloid Cluster Gene ccsA of the Ergot Fungus Claviceps purpurea Encodes Chanoclavine I Synthase, a Flavin Adenine Dinucleotide-Containing Oxidoreductase Mediating the Transformation of N-Methyl-Dimethylallyltryptophan to Chanoclavine I ▿

机译:麦角真菌Claviceps purpurea的生物碱簇基因ccsA编码Chancolavine I合酶,一种含有黄素腺嘌呤二核苷酸的氧化还原酶,介导N-甲基-二甲基烯丙基色氨酸向Chaoclavine I的转化。

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摘要

Ergot alkaloids are indole-derived secondary metabolites synthesized by the phytopathogenic ascomycete Claviceps purpurea. In wild-type strains, they are exclusively produced in the sclerotium, a hibernation structure; for biotechnological applications, submerse production strains have been generated by mutagenesis. It was shown previously that the enzymes specific for alkaloid biosynthesis are encoded by a gene cluster of 68.5 kb. This ergot alkaloid cluster consists of 14 genes coregulated and expressed under alkaloid-producing conditions. Although the role of some of the cluster genes in alkaloid biosynthesis could be confirmed by a targeted knockout approach, further functional analyses are needed, especially concerning the early pathway-specific steps up to the production of clavine alkaloids. Therefore, the gene ccsA, originally named easE and preliminarily annotated as coding for a flavin adenine dinucleotide-containing oxidoreductase, was deleted in the C. purpurea strain P1, which is able to synthesize ergot alkaloids in axenic culture. Five independent knockout mutants were analyzed with regard to alkaloid-producing capability. Thin-layer chromatography (TLC), ultrapressure liquid chromatography (UPLC), and mass spectrometry (MS) analyses revealed accumulation of N-methyl-dimethylallyltryptophan (Me-DMAT) and traces of dimethylallyltryptophan (DMAT), the first pathway-specific intermediate. Since other alkaloid intermediates could not be detected, we conclude that deletion of ccsA led to a block in alkaloid biosynthesis beyond Me-DMAT formation. Complementation with a ccsA/gfp fusion construct restored alkaloid biosynthesis. These data indicate that ccsA encodes the chanoclavine I synthase or a component thereof catalyzing the conversion of N-methyl-dimethylallyltryptophan to chanoclavine I.
机译:麦角生物碱是吲哚衍生的次生代谢产物,是由植物病原性子囊紫癜(Claviceps purpurea)合成的。在野生型菌株中,它们仅在菌核(冬眠结构)中产生。对于生物技术应用,已经通过诱变产生了水下生产菌株。先前已证明,生物碱生物合成特异的酶由68.5 kb的基因簇编码。该麦角生物碱簇由在产生生物碱的条件下被整合和表达的14个基因组成。虽然某些簇基因在生物碱生物合成中的作用可以通过有针对性的敲除方法得到证实,但仍需要进一步的功能分析,尤其是涉及到生成锁骨生物碱的早期途径特异性步骤。因此,最初被命名为easE的ccsA基因最初被注释为编码含有黄素腺嘌呤二核苷酸的氧化还原酶,该基因已在紫氏梭菌菌株P1中缺失,该菌株能够在无性培养中合成麦角生物碱。分析了五个独立的基因突变体的生物碱生产能力。薄层色谱(TLC),超压液相色谱(UPLC)和质谱(MS)分析显示了N-甲基-二甲基烯丙基色氨酸(Me-DMAT)的积累和痕量的二甲基烯丙基色氨酸(DMAT),这是第一种途径特异性中间体。由于无法检测到其他生物碱中间体,因此我们得出结论,ccsA的缺失导致Me-DMAT形成以外的生物碱生物合成受阻。与ccsA / gfp融合构建体互补可恢复生物碱的生物合成。这些数据表明,ccsA编码恰诺clavine I合酶或其催化N-甲基-二甲基烯丙基色氨酸转化为恰诺克拉维I的组分。

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