Following evolution's lead to a single residue switch for diterpene synthase product outcome
- 1 May 2007
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (18), 7397-7401
- https://doi.org/10.1073/pnas.0611454104
Abstract
There have been few insights into the biochemical origins of natural product biosynthesis from primary metabolism. Of particular interest are terpene synthases, which often mediate the committed step in particular biosynthetic pathways so that alteration of their product outcome is a key step in the derivation of novel natural products. These enzymes also catalyze complex reactions of significant mechanistic interest. Following an evolutionary lead from two recently diverged, functionally distinct diterpene synthase orthologs from different subspecies of rice, we have identified a single residue that can switch product outcome. Specifically, the mutation of a conserved isoleucine to threonine that acts to convert not only the originally targeted isokaurene synthase into a specific pimaradiene synthase but also has a much broader effect, which includes conversion of the ent-kaurene synthases found in all higher plants for gibberellin phytohormone biosynthesis to the production of pimaradiene. This surprisingly facile switch for diterpene synthase catalytic specificity indicates the ease with which primary (gibberellin) metabolism can be subverted to secondary biosynthesis and may underlie the widespread occurrence of pimaradiene-derived natural products. In addition, because this isoleucine is required for the mechanistically more complex cyclization to tetracyclic kaurene, whereas substitution with threonine “short-circuits” this mechanism to produce the “simpler” tricyclic pimaradiene, our results have some implications regarding the means by which terpene synthases specify product outcome.Keywords
This publication has 23 references indexed in Scilit:
- Probing the Role of the DXDD Motif in Class II Diterpene CyclasesChemBioChem, 2007
- Uncovering the complex metabolic network underlying diterpenoid phytoalexin biosynthesis in rice and other cereal crop plantsPhytochemistry, 2006
- Identifying and manipulating structural determinates linking catalytic specificities in terpene synthasesProceedings of the National Academy of Sciences, 2006
- Structural Biology and Chemistry of the Terpenoid CyclasesChemical Reviews, 2006
- The Variability of Sesquiterpenes Emitted from Two Zea mays Cultivars Is Controlled by Allelic Variation of Two Terpene Synthase Genes Encoding Stereoselective Multiple Product EnzymesPlant Cell, 2004
- Abietadiene Synthase from Grand Fir (Abies grandis): Characterization and Mechanism of Action of the “Pseudomature” Recombinant EnzymeBiochemistry, 2000
- SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modelingElectrophoresis, 1997
- Molecular cloning and characterization of a cDNA encoding the gibberellin biosynthetic enzyme ent‐kaurene synthase B from pumpkin (Cucurbita maxima L.)The Plant Journal, 1996
- Stereochemistry of the enzymic cyclization of copalyl pyrophosphate to kaurene in enzyme preparations from Marah macrocarpusJournal of the American Chemical Society, 1980