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藤仓赤霉菌中倍半萜和二萜的生物合成。

Biosynthesis of sesqui- and diterpenes by the gibberellin producer Fusarium fujikuroi.

机构信息

Institut für Organische Chemie, Technische Universität Braunschweig, Hagenring 30, 38106 Braunschweig, Germany.

出版信息

Chembiochem. 2011 Nov 25;12(17):2667-76. doi: 10.1002/cbic.201100516. Epub 2011 Oct 11.

DOI:10.1002/cbic.201100516
PMID:21990128
Abstract

The fungus Fusarium fujikuroi IMI58289 emits a complex pattern of volatile terpenoids including two major compounds, the sesquiterpene alcohol α-acorenol and the diterpene ent-kaurene. ent-Kaurene is the precursor for the phytohormone gibberellic acid (GA(3)) and is produced from geranylgeranyl diphosphate (GGPP) via ent-copalyl diphosphate by the bifunctional ent-copalyl diphosphate/ent-kaurene synthase (CPS/KS). Several structurally related diterpenes were identified as side products of the CPS/KS. Deletion of the cps/ks gene or the whole GA(3) biosynthetic gene cluster resulted in completely abolished diterpene production. Mutants with deletions of the cytochrome P450 monooxygenase gene P450-4, which is responsible for the three oxidation steps from ent-kaurene to ent-kaurenoic acid en route to GA(3), accumulate diterpene hydrocarbons. Feeding with [6,6,6-(2) H(3)] mevalonolactone gave insights into the stereochemistry of the GGPP cyclisation, which operates with a chair-chair-"antipodal" fold. A rational biosynthetic scheme for all identified sesquiterpenes demonstrated their formation from farnesyl diphosphate (FPP) via three alternative initial cyclisations. Genome sequencing revealed the presence of five putative sesquiterpene synthase genes in the F. fujikuroi genome. The structures of several trace compounds from other classes have been identified as new natural products; these were delineated from their mass spectra and unambiguously assigned by comparison to synthetic references.

摘要

真菌藤仓镰刀菌 IMI58289 会释放出包括两种主要化合物在内的复杂挥发性萜烯类化合物,这两种主要化合物分别为倍半萜醇 α-蛇麻烯醇和二萜 ent-贝壳杉烯。ent-贝壳杉烯是植物激素赤霉素 (GA(3)) 的前体,由香叶基二磷酸 (GGPP) 通过双功能 ent-贝壳杉烯焦磷酸/ent-贝壳杉烯合酶 (CPS/KS) 生成。几种结构相关的二萜被鉴定为 CPS/KS 的副产物。cps/ks 基因或整个 GA(3) 生物合成基因簇的缺失导致二萜的完全缺失。细胞色素 P450 单加氧酶基因 P450-4 的缺失突变体,该基因负责从 ent-贝壳杉烯到 GA(3) 合成途径中的 ent-贝壳杉烯酸的三个氧化步骤,会积累二萜烃。用 [6,6,6-(2) H(3)] 甲羟戊酸进行喂食实验,揭示了 GGPP 环化的立体化学,该环化作用采用椅-椅-“反式”折叠。所有鉴定出的倍半萜烯的合理生物合成方案表明,它们是由法呢基二磷酸 (FPP) 通过三种替代初始环化形成的。基因组测序揭示了藤仓镰刀菌基因组中存在五个可能的倍半萜合酶基因。其他类别的几种痕量化合物的结构已被鉴定为新的天然产物;这些化合物通过它们的质谱图进行了鉴定,并通过与合成参考物的比较进行了明确的分配。

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