X-ray Crystal Structure of Aristolochene Synthase from Aspergillus terreus and Evolution of Templates for the Cyclization of Farnesyl Diphosphate,
- 30 January 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 46 (7), 1941-1951
- https://doi.org/10.1021/bi0622524
Abstract
Aristolochene synthase from Aspergillus terreus catalyzes the cyclization of the universal sesquiterpene precursor, farnesyl diphosphate, to form the bicyclic hydrocarbon aristolochene. The 2.2 Å resolution X-ray crystal structure of aristolochene synthase reveals a tetrameric quaternary structure in which each subunit adopts the α-helical class I terpene synthase fold with the active site in the “open”, solvent-exposed conformation. Intriguingly, the 2.15 Å resolution crystal structure of the complex with Mg2+3-pyrophosphate reveals ligand binding only to tetramer subunit D, which is stabilized in the “closed” conformation required for catalysis. Tetramer assembly may hinder conformational changes required for the transition from the inactive open conformation to the active closed conformation, thereby accounting for the attenuation of catalytic activity with an increase in enzyme concentration. In both conformations, but especially in the closed conformation, the active site contour is highly complementary in shape to that of aristolochene, and a catalytic function is proposed for the pyrophosphate anion based on its orientation with regard to the presumed binding mode of aristolochene. A similar active site contour is conserved in aristolochene synthase from Penicillium roqueforti despite the substantial divergent evolution of these two enzymes, while strikingly different active site contours are found in the sesquiterpene cyclases 5-epi-aristolochene synthase and trichodiene synthase. Thus, the terpenoid cyclase active site plays a critical role as a template in binding the flexible polyisoprenoid substrate in the proper conformation for catalysis. Across the greater family of terpenoid cyclases, this template is highly evolvable within a conserved α-helical fold for the synthesis of terpene natural products of diverse structure and stereochemistry.Keywords
This publication has 34 references indexed in Scilit:
- Structural Biology and Chemistry of the Terpenoid CyclasesChemical Reviews, 2006
- Role of Arginine-304 in the Diphosphate-Triggered Active Site Closure Mechanism of Trichodiene Synthase,Biochemistry, 2005
- Evidence for Differential Folding of Farnesyl Pyrophosphate in the Active Site of Aristolochene Synthase: A Single-Point Mutation Converts Aristolochene Synthase into an (E)-β-Farnesene SynthaseBiochemistry, 2003
- Sesquiterpene Synthases from Grand Fir (Abies grandis)Journal of Biological Chemistry, 1998
- Trichodiene Synthase. Probing the Role of the Highly Conserved Aspartate-Rich Region by Site-Directed MutagenesisBiochemistry, 1996
- Trichodiene Synthase. Identification of Active Site Residues by Site-Directed MutagenesisBiochemistry, 1995
- Crystal Structure of Recombinant Farnesyl Diphosphate Synthase at 2.6-.ANG. ResolutionBiochemistry, 1994
- Detection, delineation, measurement and display of cavities in macromolecular structuresActa Crystallographica Section D-Biological Crystallography, 1994
- Improved methods for building protein models in electron density maps and the location of errors in these modelsActa Crystallographica Section A Foundations of Crystallography, 1991
- The interpretation of protein structures: Estimation of static accessibilityJournal of Molecular Biology, 1971