Sesquiterpene synthases catalyze the cyclization of the universal acyclic precursor, farnesyl diphosphate (1) to any of 200 distinct cyclic sesquiterpene hydrocarbons and alcohols, which in turn can serve as the metabolic precursors of the many thousands of known sesquiterpenoids. These metabolites can display a wide range of antibiotic or other physiological activities, be it antiviral, antibacterial, antifungal, insecticidal, antifeedant, cytostatic, immunosuppressive, or neurotoxic. Extensive investigations with both stereospecifically labeled substrates as well as with various competitive inhibitors, carried out in our own and other laboratories, have led to a general mechanistic and stereochemical model of terpenoid cyclization. We propose to continue and extend ongoing studies of the mechanistic enzymology and molecular genetics of terpenoid cyclizations. The focus will be on a family of microbial sesquiterpene synthases which catalyze the conversion of farnesyl diphosphate (1) to trichodiene (2), aristolochene (3) beta-trans-bergamotene (4), and epi-cubenol (5). In collaboration with Professor Rodney Croteau of Washington State University we will also study a group of monoterpene synthases, including limonene (6) synthase. In order to test and to extend further a general stereochemical model of terpenoid cyclizations, three broad and closely interrelated questions must be addressed: 1) How does a cyclase impose a specific folding pattern or conformation on the substrate FPP and derived intermediates? 2) How does a cyclase manage charged intermediates, including.catalysis of the initial ionization of substrate, through stabilization of cationic intermediates, to termination of the reaction by quenching of positive charge? A related issue is how does the cyclase avoid annihilation which would result from reaction with the highly electrophilic species it must accommodate? 3) What is the nature of the active site? To answer these questions, we have devised a set of mutually complementary experimental approaches, involving: A. Synthesis and cyclization of stereospecifically labeled substrates and intermediates and analysis of the distribution of label in the derived cyclization products by 2H and 13C NMR; B . Purification of sequiterpene cyclases and cloning, sequencing, and overexpression of the relevant structural genes; C. Design, synthesis, and testing of substrate and intermediate analogs as either competitive inhibitors of the normal cyclization or active-site directed and mechanism-based irreversible inactivators of sesquiterpene or monoterpene synthases; D. Isolation and identification of normally enzyme- bound intermediates through rapid quench experiments or the use of anomalous substrates which can only undergo partial reactions. The techniques and experimental approaches developed in the proposed research are expected to be broadly applicable to the understanding of not only terpenoid cyclizations but enzyme mechanistic and biosynthetic investigations in general, as well as the evolution of natural products biosynthetic pathways.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Method to Extend Research in Time (MERIT) Award (R37)
Project #
5R37GM030301-20
Application #
6351172
Study Section
Special Emphasis Panel (NSS)
Program Officer
Jones, Warren
Project Start
1982-01-01
Project End
2004-01-31
Budget Start
2001-02-01
Budget End
2002-01-31
Support Year
20
Fiscal Year
2001
Total Cost
$432,542
Indirect Cost
Name
Brown University
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
001785542
City
Providence
State
RI
Country
United States
Zip Code
02912
Pemberton, Travis A; Chen, Mengbin; Harris, Golda G et al. (2017) Exploring the Influence of Domain Architecture on the Catalytic Function of Diterpene Synthases. Biochemistry 56:2010-2023
Chou, Wayne Kw; Gould, Colin A; Cane, David E (2017) Incubation of 2-methylisoborneol synthase with the intermediate analog 2-methylneryl diphosphate. J Antibiot (Tokyo) 70:625-631
Blank, Patrick N; Barrow, Golda H; Chou, Wayne K W et al. (2017) Substitution of Aromatic Residues with Polar Residues in the Active Site Pocket of epi-Isozizaene Synthase Leads to the Generation of New Cyclic Sesquiterpenes. Biochemistry 56:5798-5811
Li, Zhenqiu; Gao, Ruiping; Hao, Qinggang et al. (2016) The T296V Mutant of Amorpha-4,11-diene Synthase Is Defective in Allylic Diphosphate Isomerization but Retains the Ability To Cyclize the Intermediate (3R)-Nerolidyl Diphosphate to Amorpha-4,11-diene. Biochemistry 55:6599-6604
Chen, Mengbin; Chou, Wayne K W; Toyomasu, Tomonobu et al. (2016) Structure and Function of Fusicoccadiene Synthase, a Hexameric Bifunctional Diterpene Synthase. ACS Chem Biol 11:889-99
Chen, Ke; Wu, Shiwen; Zhu, Lu et al. (2016) Substitution of a Single Amino Acid Reverses the Regiospecificity of the Baeyer-Villiger Monooxygenase PntE in the Biosynthesis of the Antibiotic Pentalenolactone. Biochemistry 55:6696-6704
Duan, Lian; Jogl, Gerwald; Cane, David E (2016) The Cytochrome P450-Catalyzed Oxidative Rearrangement in the Final Step of Pentalenolactone Biosynthesis: Substrate Structure Determines Mechanism. J Am Chem Soc 138:12678-89
Chen, Mengbin; Chou, Wayne K W; Al-Lami, Naeemah et al. (2016) Probing the Role of Active Site Water in the Sesquiterpene Cyclization Reaction Catalyzed by Aristolochene Synthase. Biochemistry 55:2864-74
Johnson, Mark E; Shon, Judy; Guan, Brian M et al. (2016) Fluorocarbon Modified Low-Molecular-Weight Polyethylenimine for siRNA Delivery. Bioconjug Chem 27:1784-8
Yamada, Yuuki; Arima, Shiho; Nagamitsu, Tohru et al. (2015) Novel terpenes generated by heterologous expression of bacterial terpene synthase genes in an engineered Streptomyces host. J Antibiot (Tokyo) 68:385-94

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