Literature DB >> 25361766

Molecular characterization and phylogenetic analysis of two novel regio-specific flavonoid prenyltransferases from Morus alba and Cudrania tricuspidata.

Ruishan Wang1, Ridao Chen1, Jianhua Li1, Xiao Liu1, Kebo Xie1, Dawei Chen1, Yunze Yin1, Xiaoyu Tao1, Dan Xie1, Jianhua Zou1, Lin Yang1, Jungui Dai2.   

Abstract

Prenylated flavonoids are attractive specialized metabolites with a wide range of biological activities and are distributed in several plant families. The prenylation catalyzed by prenyltransferases represents a Friedel-Crafts alkylation of the flavonoid skeleton in the biosynthesis of natural prenylated flavonoids and contributes to the structural diversity and biological activities of these compounds. To date, all identified plant flavonoid prenyltransferases (FPTs) have been identified in Leguminosae. In the present study two new FPTs, Morus alba isoliquiritigenin 3'-dimethylallyltransferase (MaIDT) and Cudrania tricuspidata isoliquiritigenin 3'-dimethylallyltransferase (CtIDT), were identified from moraceous plants M. alba and C. tricuspidata, respectively. MaIDT and CtIDT shared low levels of homology with the leguminous FPTs. MaIDT and CtIDT are predicted to be membrane-bound proteins with predicted transit peptides, seven transmembrane regions, and conserved functional domains that are similar to other homogentisate prenyltransferases. Recombinant MaIDT and CtIDT were able to regioselectively introduce dimethylallyl diphosphate into the A ring of three flavonoids with different skeleton types (chalcones, isoflavones, and flavones). Phylogenetic analysis revealed that MaIDT and CtIDT are distantly related to their homologs in Leguminosae, which suggests that FPTs in Moraceae and Leguminosae might have evolved independently. MaIDT and CtIDT represent the first two non-Leguminosae FPTs to be identified in plants and could thus lead to the identification of additional evolutionarily varied FPTs in other non-Leguminosae plants and could elucidate the biosyntheses of prenylated flavonoids in various plants. Furthermore, MaIDT and CtIDT might be used for regiospecific prenylation of flavonoids to produce bioactive compounds for potential therapeutic applications due to their high efficiency and catalytic promiscuity.
© 2014 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Cudrania tricuspidata; Flavonoid; Flavonoid Prenyltransferase; Gene Expression; Molecular Evolution; Morus alba; Phylogenetics; Plant Biochemistry; Promiscuity; Regiospecificity

Mesh:

Substances:

Year:  2014        PMID: 25361766      PMCID: PMC4276850          DOI: 10.1074/jbc.M114.608265

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  45 in total

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Authors:  Guoan Shen; David Huhman; Zhentian Lei; John Snyder; Lloyd W Sumner; Richard A Dixon
Journal:  Plant Physiol       Date:  2012-03-19       Impact factor: 8.340

3.  Novel prenyltransferase enzymes as a tool for flavonoid prenylation.

Authors:  Bruno Botta; Giuliano Delle Monache; Pilar Menendez; Alberto Boffi
Journal:  Trends Pharmacol Sci       Date:  2005-10-17       Impact factor: 14.819

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Authors:  Anastasia L Crowell; David C Williams; Edward M Davis; Mark R Wildung; Rodney Croteau
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5.  Antibacterial prenylflavone derivatives from Psoralea corylifolia, and their structure-activity relationship study.

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Review 8.  Prenylated isoflavonoids: Botanical distribution, structures, biological activities and biotechnological studies. An update (1995-2006).

Authors:  Bruno Botta; Pilar Menendez; Giovanni Zappia; Roberto Alves de Lima; Roberta Torge; Giuliano Delle Monachea
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Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

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Review 2.  Xanthone Biosynthetic Pathway in Plants: A Review.

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3.  Molecular Characterization of Soybean Pterocarpan 2-Dimethylallyltransferase in Glyceollin Biosynthesis: Local Gene and Whole-Genome Duplications of Prenyltransferase Genes Led to the Structural Diversity of Soybean Prenylated Isoflavonoids.

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4.  Convergent evolution of the UbiA prenyltransferase family underlies the independent acquisition of furanocoumarins in plants.

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5.  Synthetic production of prenylated naringenins in yeast using promiscuous microbial prenyltransferases.

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6.  De novo Transcriptome Analysis Revealed the Putative Pathway Genes Involved in Biosynthesis of Moracins in Morus alba L.

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7.  Biocatalytic access to diverse prenylflavonoids by combining a regiospecific C-prenyltransferase and a stereospecific chalcone isomerase.

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Journal:  Acta Pharm Sin B       Date:  2018-03-05       Impact factor: 11.413

8.  Distinguishing Six Edible Berries Based on Metabolic Pathway and Bioactivity Correlations by Non-targeted Metabolite Profiling.

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9.  C7-Prenylation of Tryptophan-Containing Cyclic Dipeptides by 7-Dimethylallyl Tryptophan Synthase Significantly Increases the Anticancer and Antimicrobial Activities.

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