Anthocyanidin synthase from Gerbera hybrida catalyzes the conversion of (+)‐catechin to cyanidin and a novel procyanidin
- 17 February 2006
- journal article
- Published by Wiley in FEBS Letters
- Vol. 580 (6), 1642-1648
- https://doi.org/10.1016/j.febslet.2006.02.004
Abstract
Anthocyanidins were proposed to derive from (+)-naringenin via (2R,3R)-dihydroflavonol(s) and (2R,3S,4S)-leucocyanidin(s) which are eventually oxidized by anthocyanidin synthase (ANS). Recently, the role of ANS has been put into question, because the recombinant enzyme from Arabidopsis exhibited primarily flavonol synthase (FLS) activity with negligible ANS activity. This and other studies led to the proposal that ANS as well as FLS may select for dihydroflavonoid substrates carrying a "beta-face" C-3 hydroxyl group and initially form the 3-geminal diol by "alpha-face" hydroxylation. Assays with recombinant ANS from Gerbera hybrida fully supported the proposal and were extended to catechin and epicatechin isomers as potential substrates to delineate the enzyme specificity. Gerbera ANS converted (+)-catechin to two major and one minor product, whereas ent(-)-catechin (2S,3R-trans-catechin), (-)-epicatechin, ent(+)-epicatechin (2S,3S-cis-epicatechin) and (-)-gallocatechin were not accepted. The K(m) value for (+)-catechin was determined at 175 microM, and the products were identified by LC-MS(n) and NMR as the 4,4-dimer of oxidized (+)-catechin (93%), cyanidin (7%) and quercetin (trace). When these incubations were repeated in the presence of UDP-glucose:flavonoid 3-O-glucosyltransferase from Fragariaxananassa (FaGT1), the product ratio shifted to cyanidin 3-O-glucoside (60%), cyanidin (14%) and dimeric oxidized (+)-catechin (26%) at an overall equivalent rate of conversion. The data appear to identify (+)-catechin as another substrate of ANS in vivo and shed new light on the mechanism of its catalysis. Moreover, the enzymatic dimerization of catechin monomers is reported for the first time suggesting a role for ANS beyond the oxidation of leucocyanidins.Keywords
This publication has 36 references indexed in Scilit:
- Significance of C‐terminal sequence elements for Petunia flavanone 3β‐hydroxylase activityFEBS Letters, 2004
- TRANSPARENT TESTA 19 is involved in the accumulation of both anthocyanins and proanthocyanidins in ArabidopsisThe Plant Journal, 2003
- Analysis and biological activities of anthocyaninsPhytochemistry, 2003
- Role of Anthocyanidin Reductase, Encoded by BANYULS in Plant Flavonoid BiosynthesisScience, 2003
- Heterologous expression of dihydroflavonol 4‐reductases from various plantsFEBS Letters, 2002
- Reaction Mechanism from Leucoanthocyanidin to Anthocyanidin 3-Glucoside, a Key Reaction for Coloring in Anthocyanin BiosynthesisJournal of Biological Chemistry, 2001
- Contributions of Jeffrey Harborne and co-workers to the study of anthocyaninsPhytochemistry, 2001
- Advances in flavonoid research since 1992Phytochemistry, 2000
- Identification of Strictly Conserved Histidine and Arginine Residues as Part of the Active Site in Petunia hybrida Flavanone 3β‐HydroxylaseEuropean Journal of Biochemistry, 1997
- Leucoanthocyanidins as intermediates in anthocyanidin biosynthesis in flowers of Matthiola incana R. Br.Planta, 1985