The Cyclization of Farnesyl Diphosphate and Nerolidyl Diphosphate by a Purified Recombinant δ-Cadinene Synthase
Open Access
- 1 April 2001
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 125 (4) , 1754-1765
- https://doi.org/10.1104/pp.125.4.1754
Abstract
The first step in the conversion of the isoprenoid intermediate, farnesyl diphosphate (FDP), to sesquiterpene phytoalexins in cotton (Gossypium barbadense) plants is catalyzed by δ-cadinene (CDN) synthase. CDN is the precursor of desoxyhemigossypol and hemigossypol defense sesquiterpenes. In this paper we have studied the mechanism for the cyclization of FDP and the putative intermediate, nerolidyl diphosphate, to CDN. A purified recombinant CDN synthase (CDN1-C1) expressed in Escherichia colifrom CDN1-C1 cDNA isolated from Gossypium arboreumcyclizes (1RS)-[1-2H](E, E)-FDP to >98% [5-2H]and [11-2H]CDN. Enzyme reaction mixtures cyclize (3RS)-[4,4,13,13,13-2H5]-nerolidyl diphosphate to 62.1% [8,8,15,15,15-2H5]-CDN, 15.8% [6,6,15,15,15-2H5]-α-bisabolol, 8.1% [6,6,15,15,15-2H5]-(β)-bisabolene, 9.8% [4,4,13,13-2H4]-(E)-β-farnesene, and 4.2% unknowns. Competitive studies show that (3R)-nerolidyl diphosphate is the active enantiomer of (3RS)-nerolidyl diphosphate that cyclized to CDN. The kcat/K m values demonstrate that the synthase uses (E,E)-FDP as effectively as (3R)-nerolidyl diphosphate in the formation of CDN. Cyclization studies with (3R)-nerolidyl diphosphate show that the formation of CDN, (E)-β-farnesene, and β-bisabolene are enzyme dependent, but the formation of α-bisabolol in the reaction mixtures was a Mg2+-dependent solvolysis of nerolidyl diphosphate. Enzyme mechanisms are proposed for the formation of CDN from (E,E)-FDP and for the formation of CDN, (E)-β-farnesene, and β-bisabolene from (3RS)-nerolidyl diphosphate. The primary structures of cotton CDN synthase and tobacco epi-aristolochene synthase show 48% identity, suggesting similar three-dimensional structures. We used the SWISS-MODEL to test this. The two enzymes have the same overall structure consisting of two α-helical domains and epi-aristolochene synthase is a good model for the structure of CDN synthase. Several amino acids in the primary structures of both synthases superimpose. The amino acids having catalytic roles in epi-aristochene synthase are substituted in the CDN synthase and may be related to differences in catalytic properties.Keywords
This publication has 20 references indexed in Scilit:
- Coordinated Accumulation of (+)-δ-Cadinene Synthase mRNAs and Gossypol in Developing Seeds of Gossypium hirsutum and a New Member of the cad1 Family from G. arboreumJournal of Natural Products, 1998
- The enzymatic cyclization of nerolidyl diphosphate by δ-cadinene synthase from cotton stele tissue infected with verticillium dahliaePhytochemistry, 1998
- SWISS‐MODEL and the Swiss‐Pdb Viewer: An environment for comparative protein modelingElectrophoresis, 1997
- Purification of (+)-δ-cadinene synthase, a sesquiterpene cyclase from bacteria-inoculated cotton foliar tissuePhytochemistry, 1996
- Synthesis of Chiral Hydroxylated Farnesene DerivativesSynthesis, 1996
- Biosynthesis of acyclic homoterpenes: Enzyme selectivity and absolute configuration of the nerolidol precursorPhytochemistry, 1995
- (+)-δ-Cadinene is a product of sesquiterpene cyclase activity in cottonPhytochemistry, 1995
- The enzymatic formation of δ-cadinene from farnesyl diphosphate in extracts of cottonPhytochemistry, 1995
- Comparison of volatiles emitted by male caribbean and mexican fruit fliesJournal of Chemical Ecology, 1992
- The mechanism of the prenyltransferase reaction. Metal ion dependent solvolysis of an allylic pyrophosphateJournal of the American Chemical Society, 1977