Flavone synthase II (CYP93B16) from soybean (Glycine max L.)

黄酮类 经络 黄烷酮 查尔酮合酶 木犀草素 芹菜素 生物化学 柚皮素 化学 异黄酮 类黄酮 立体化学 生物 生物合成 植物 抗氧化剂
作者
Judith Fliegmann,Katarina Furtwängler,Georg Malterer,Corrado Cantarello,Göde Schüler,Jürgen Ebel,Axel Mithöfer
出处
期刊:Phytochemistry [Elsevier]
卷期号:71 (5-6): 508-514 被引量:69
标识
DOI:10.1016/j.phytochem.2010.01.007
摘要

Flavonoids are a very diverse group of plant secondary metabolites with a wide array of activities in plants, as well as in nutrition and health. All flavonoids are derived from a limited number of flavanone intermediates, which serve as substrates for a variety of enzyme activities, enabling the generation of diversity in flavonoid structures. Flavonoids can be characteristic metabolites, like isoflavonoids for legumes. Others, like flavones, occur in nearly all plants. Interestingly, there exist two fundamentally different enzymatic systems able to directly generate flavones from flavanones, flavone synthase (FNS) I and II. We describe an inducible flavone synthase activity from soybean (Glycine max) cell cultures, generating 7,4′-dihydroxyflavone (DHF), which we classified as FNS II. The corresponding full-length cDNA (CYP93B16) was isolated using known FNS II sequences from other plants. Functional expression in yeast allowed the detailed biochemical characterization of the catalytic activity of FNS II. A direct conversion of flavanones such as liquiritigenin, naringenin, and eriodictyol into the corresponding flavones DHF, apigenin and luteolin, respectively, was demonstrated. The enzymatic reaction of FNS II was stereoselective, favouring the (S)- over the (R)-enantiomer. Phylogenetic analyses of the subfamily of plant CYP93B enzymes indicate the evolution of a gene encoding a flavone synthase which originally catalyzed the direct conversion of flavanones into flavones, via early gene duplication into a less efficient enzyme with an altered catalytic mechanism. Ultimately, this allowed the evolution of the legume-specific isoflavonoid synthase activity.
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