Consequences of Conformational Preorganization in Sesquiterpene Biosynthesis: Theoretical Studies on the Formation of the Bisabolene, Curcumene, Acoradiene, Zizaene, Cedrene, Duprezianene, and Sesquithuriferol Sesquiterpenes
- 26 May 2009
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 131 (23) , 7999-8015
- https://doi.org/10.1021/ja9005332
Abstract
Quantum chemical calculations on cyclization mechanisms for several sesquiterpene families proposed to be closely related to each other in a biogenic sense (the bisabolene, curcumene, acoradiene, zizaene (zizaene, isozizaene, epi-zizaene, and epi-isozizaene), cedrene (α/β-cedrenes and 7-epi-α/β-cedrenes), duprezianene, and sesquithuriferol families) are described. On the basis of the results of these calculations, we suggest that the conformation of the bisabolyl cation attainable in an enzyme active site is a primary determinant of the structure and relative stereochemistry of the sesquiterpenes formed. We also suggest that substantial conformational changes of initially formed conformers of the bisabolyl cation are necessary in order to form zizaene and epi-cedrene. Given that the productive conformation of the bisabolyl cation does not necessarily reflect the original orientation of farnesyl diphosphate bound in the corresponding enzyme active site, we conclude that folding of farnesyl diphosphate alone does not always dictate the structure and relative stereochemistry of cyclization products. In addition, the potential roles of dynamic matching in determining product distributions and enzyme-promoted formation of secondary carbocations are discussed.Keywords
This publication has 73 references indexed in Scilit:
- Computational Studies on Biosynthetic Carbocation Rearrangements Leading to Sativene, Cyclosativene, α-Ylangene, and β-YlangeneThe Journal of Organic Chemistry, 2008
- Unearthing the roots of the terpenomeCurrent Opinion in Chemical Biology, 2008
- Which Is More Likely in Trichodiene Biosynthesis: Hydride or Proton Transfer?Organic Letters, 2006
- Structural Biology and Chemistry of the Terpenoid CyclasesChemical Reviews, 2006
- Theoretical Studies on Farnesyl Cation Cyclization: Pathways to PentaleneneJournal of the American Chemical Society, 2006
- The Cationic Cascade Route to LongifoleneThe Journal of Organic Chemistry, 2005
- Cyclization Enzymes in the Biosynthesis of Monoterpenes, Sesquiterpenes, and DiterpenesPublished by Springer Nature ,2000
- Sesquiterpene Biosynthesis: Cyclization MechanismsPublished by Elsevier ,1999
- Enzymic formation of sesquiterpenesChemical Reviews, 1990
- Isoprenoid biosynthesis. Stereochemistry of the cyclization of allylic pyrophosphatesAccounts of Chemical Research, 1985