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Enzymatic 13C Labeling and Multidimensional NMR Analysis of Miltiradiene Synthesized by Bifunctional Diterpene Cyclase in Selaginella moellendorffii

机译:双功能环戊二烯环化酶在莫氏卷柏中的13C酶标记和多维NMR分析

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摘要

Diterpenes show diverse chemical structures and various physiological roles. The diversity of diterpene is primarily established by diterpene cyclases that catalyze a cyclization reaction to form the carbon skeleton of cyclic diterpene. Diterpene cyclases are divided into two types, monofunctional and bifunctional cyclases. Bifunctional diterpene cyclases (BDTCs) are involved in hormone and defense compound biosyntheses in bryophytes and gymnosperms, respectively. The BDTCs catalyze the successive two-step type-B (protonation-initiated cyclization) and type-A (ionization-initiated cyclization) reactions of geranylgeranyl diphosphate (GGDP). We found that the genome of a lycophyte, Selaginella moellendorffii, contains six BDTC genes with the majority being uncharacterized. The cDNA from S. moellendorffii encoding a BDTC-like enzyme, miltiradiene synthase (SmMDS), was cloned. The recombinant SmMDS converted GGDP to a diterpene hydrocarbon product with a molecular mass of 272 Da. Mutation in the type-B active motif of SmMDS abolished the cyclase activity, whereas (+)-copalyl diphosphate, the reaction intermediate from the conversion of GGDP to the hydrocarbon product, rescued the cyclase activity of the mutant to form a diterpene hydrocarbon. Another mutant lacking type-A activity accumulated copalyl diphosphate as the reaction intermediate. When the diterpene hydrocarbon was enzymatically synthesized from [U-13C6]mevalonate, all carbons were labeled with 13C stable isotope (>99%). The fully 13C-labeled product was subjected to 13C-13C COSY NMR spectroscopic analyses. The direct carbon-carbon connectivities observed in the multidimensional NMR spectra demonstrated that the hydrocarbon product by SmMDS is miltiradiene, a putative biosynthetic precursor of tanshinone identified from the Chinese medicinal herb Salvia miltiorrhiza. Hence, SmMDS functions as a bifunctional miltiradiene synthase in S. moellendorffii. In this study, we demonstrate that one-dimensional and multidimensional 13C NMR analyses of completely 13C-labeled compound are powerful methods for biosynthetic studies.
机译:二萜显示各种化学结构和各种生理作用。二萜的多样性主要由催化环化反应以形成环状二萜碳骨架的二萜环化酶建立。二萜环化酶分为单功能和双功能环化酶两种。双功能二萜环化酶(BDTC)分别与苔藓植物和裸子植物的激素和防御化合物的生物合成有关。 BDTC催化连续的两步香叶基香叶基香叶基二磷酸(GGDP)的B型(质子化引发的环化)和A型(离子化引发的环化)反应。我们发现,一种苔藓植物卷柏(Selaginella moellendorffii)的基因组包含六个BDTC基因,其中大多数尚未鉴定。克隆了来自莫氏链球菌的编码BDTC样酶的Milradiradiene合酶(SmMDS)的cDNA。重组SmMDS将GGDP转化为分子量为272 Da的二萜烃产物。 SmMDS的B型活性基序突变消除了环化酶活性,而GGDP转化为碳氢化合物产物的反应中间体(+)-copalyl diphosphate拯救了突变体的环化酶活性,形成了二萜碳氢化合物。另一个缺乏A型活性的突变体积累了磷酸二棕榈酯作为反应中间体。当从[U- 13 C6]甲羟戊酸酶法合成二萜烃时,所有碳原子均用 13 C稳定同位素标记(> 99%)。对完全 13 C标记的产物进行 13 C- 13 C COYY NMR光谱分析。在多维NMR光谱中观察到的直接碳-碳连通性表明,SmMDS的烃产物是miltiradiene,这是从中草药丹参中鉴定出的丹参酮的生物合成前体。因此,SmMDS在莫氏链霉菌中充当双功能的milradiradiene合酶。在这项研究中,我们证明了完全 13 C标记的化合物的一维和多维 13 C NMR分析是生物合成研究的有效方法。

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