Literature DB >> 20132953

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

Judith Fliegmann1, Katarina Furtwängler, Georg Malterer, Corrado Cantarello, Göde Schüler, Jürgen Ebel, Axel Mithöfer.   

Abstract

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 FNSII 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. Copyright 2010 Elsevier Ltd. All rights reserved.

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Year:  2010        PMID: 20132953     DOI: 10.1016/j.phytochem.2010.01.007

Source DB:  PubMed          Journal:  Phytochemistry        ISSN: 0031-9422            Impact factor:   4.072


  23 in total

1.  Chiral analytical method development of liquiritigenin with application to a pharmacokinetic study.

Authors:  Casey L Sayre; Mandi Hopkins; Jody K Takemoto; Neal M Davies
Journal:  Biomed Chromatogr       Date:  2012-07-20       Impact factor: 1.902

2.  Cytochrome P450 93G1 Is a Flavone Synthase II That Channels Flavanones to the Biosynthesis of Tricin O-Linked Conjugates in Rice.

Authors:  Pui Ying Lam; Fu-Yuan Zhu; Wai Lung Chan; Hongjia Liu; Clive Lo
Journal:  Plant Physiol       Date:  2014-05-19       Impact factor: 8.340

3.  Light and auxin responsive cytochrome P450s from Withania somnifera Dunal: cloning, expression and molecular modelling of two pairs of homologue genes with differential regulation.

Authors:  Sudhakar Srivastava; Rajender Singh Sangwan; Sandhya Tripathi; Bhawana Mishra; L K Narnoliya; L N Misra; Neelam S Sangwan
Journal:  Protoplasma       Date:  2015-02-17       Impact factor: 3.356

4.  A genome-wide regulatory framework identifies maize pericarp color1 controlled genes.

Authors:  Kengo Morohashi; María Isabel Casas; Maria Lorena Falcone Ferreyra; Lorena Falcone Ferreyra; María Katherine Mejía-Guerra; Lucille Pourcel; Alper Yilmaz; Antje Feller; Bruna Carvalho; Julia Emiliani; Eduardo Rodriguez; Silvina Pellegrinet; Michael McMullen; Paula Casati; Erich Grotewold
Journal:  Plant Cell       Date:  2012-07-20       Impact factor: 11.277

Review 5.  Plant P450s as versatile drivers for evolution of species-specific chemical diversity.

Authors:  Björn Hamberger; Søren Bak
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2013-01-06       Impact factor: 6.237

6.  Endogenous post-transcriptional gene silencing of flavone synthase resulting in high accumulation of anthocyanins in black dahlia cultivars.

Authors:  Ayumi Deguchi; Sho Ohno; Munetaka Hosokawa; Fumi Tatsuzawa; Motoaki Doi
Journal:  Planta       Date:  2013-02-07       Impact factor: 4.116

7.  Molecular Basis for Chemical Evolution of Flavones to Flavonols and Anthocyanins in Land Plants.

Authors:  Dan-Dan Li; Rong Ni; Ping-Ping Wang; Xiao-Shuang Zhang; Piao-Yi Wang; Ting-Ting Zhu; Chun-Jing Sun; Chang-Jun Liu; Hong-Xiang Lou; Ai-Xia Cheng
Journal:  Plant Physiol       Date:  2020-10-06       Impact factor: 8.340

8.  The Identification of Maize and Arabidopsis Type I FLAVONE SYNTHASEs Links Flavones with Hormones and Biotic Interactions.

Authors:  María Lorena Falcone Ferreyra; Julia Emiliani; Eduardo José Rodriguez; Valeria Alina Campos-Bermudez; Erich Grotewold; Paula Casati
Journal:  Plant Physiol       Date:  2015-08-12       Impact factor: 8.340

9.  The roles of a flavone-6-hydroxylase and 7-O-demethylation in the flavone biosynthetic network of sweet basil.

Authors:  Anna Berim; David R Gang
Journal:  J Biol Chem       Date:  2012-11-26       Impact factor: 5.157

10.  Roles of cytochrome P450 2A6 in the oxidation of flavone, 4'-hydroxyflavone, and 4'-, 3'-, and 2'-methoxyflavones by human liver microsomes.

Authors:  Haruna Nagayoshi; Norie Murayama; Shigeo Takenaka; Vitchan Kim; Donghak Kim; Masayuki Komori; Hiroshi Yamazaki; F Peter Guengerich; Tsutomu Shimada
Journal:  Xenobiotica       Date:  2021-08-04       Impact factor: 1.908

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