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胍三霉素生物合成途径暗示细胞色素 P450 介导的区域和立体特异性鸟嘌呤基转移反应。

Guanitrypmycin Biosynthetic Pathways Imply Cytochrome P450 Mediated Regio- and Stereospecific Guaninyl-Transfer Reactions.

机构信息

Institut für Pharmazeutische Biologie und Biotechnologie, Philipps-Universität Marburg, Robert-Koch Straße 4, 35037, Marburg, Germany.

Fachbereich Chemie, Philipps-Universität Marburg, Hans-Meerwein-Straße 4, 35032, Marburg, Germany.

出版信息

Angew Chem Int Ed Engl. 2019 Aug 12;58(33):11534-11540. doi: 10.1002/anie.201906891. Epub 2019 Jul 5.

Abstract

Mining microbial genomes including those of Streptomyces reveals the presence of a large number of biosynthetic gene clusters. Unraveling this genetic potential has proved to be a useful approach for novel compound discovery. Here, we report the heterologous expression of two similar P450-associated cyclodipeptide synthase-containing gene clusters in Streptomyces coelicolor and identification of eight rare and novel natural products, the C3-guaninyl indole alkaloids guanitrypmycins. Expression of different gene combinations proved that the cyclodipeptide synthases assemble cyclo-l-Trp-l-Phe and cyclo-l-Trp-l-Tyr, which are consecutively and regiospecifically modified by cyclodipeptide oxidases, cytochrome P450 enzymes, and N-methyltransferases. In vivo and in vitro results proved that the P450 enzymes function as key biocatalysts and catalyze the regio- and stereospecific 3α-guaninylation at the indole ring of the tryptophanyl moiety. Isotope-exchange experiments provided evidence for the non-enzymatic epimerization of the biosynthetic pathway products via keto-enol tautomerism. This post-pathway modification during cultivation further increases the structural diversity of guanitrypmycins.

摘要

从包括链霉菌属在内的微生物基因组中挖掘,揭示了大量生物合成基因簇的存在。事实证明,揭示这种遗传潜力是一种发现新型化合物的有用方法。在这里,我们报告了链霉菌属中两种类似的 P450 相关环二肽合酶基因簇的异源表达,并鉴定了八种罕见的新型天然产物,即 C3-鸟嘌呤基吲哚生物碱胍三霉素。不同基因组合的表达证明,环二肽合酶组装环-l-色氨酸-l-苯丙氨酸和环-l-色氨酸-l-酪氨酸,这些氨基酸被环二肽氧化酶、细胞色素 P450 酶和 N-甲基转移酶连续且区域特异性修饰。体内和体外结果证明,P450 酶作为关键的生物催化剂,催化色氨酸部分吲哚环的区域和立体特异性 3α-鸟嘌呤化。同位素交换实验为生物合成途径产物通过酮-烯醇互变异构进行非酶促差向异构化提供了证据。这种培养过程中的后途径修饰进一步增加了胍三霉素的结构多样性。

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