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PMID: 22907771 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Review

Terpenoid synthase structures: a so far incomplete view of complex catalysis.

Natural product reports ·Vol. 29 ·No. 10 ·2012-10-00 ·Pages 1153-75

Gao Y, Honzatko RB, Peters RJ

Abstract

The complexity of terpenoid natural products has drawn significant interest, particularly since their common (poly)isoprenyl origins were discovered. Notably, much of this complexity is derived from the highly variable cyclized and/or rearranged nature of the observed hydrocarbon skeletal structures. Indeed, at least in some cases it is difficult to immediately recognize their derivation from poly-isoprenyl precursors. Nevertheless, these diverse structures are formed by sequential elongation to acyclic precursors, most often with subsequent cyclization and/or rearrangement. Strikingly, the reactions used to assemble and diversify terpenoid backbones share a common carbocationic driven mechanism, although the means by which the initial carbocation is generated does vary. High-resolution crystal structures have been obtained for at least representative examples from each of the various types of enzymes involved in producing terpenoid hydrocarbon backbones. However, while this has certainly led to some insights into the enzymatic structure-function relationships underlying the elongation and simpler cyclization reactions, our understanding of the more complex cyclization and/or rearrangement reactions remains limited. Accordingly, selected examples are discussed here to demonstrate our current understanding, its limits, and potential ways forward.

MeSH Terms
Alkyl and Aryl Transferases/chemistry,metabolism Catalysis Molecular Structure Protein Conformation Structure-Activity Relationship Terpenes/chemistry,metabolism
Chemicals
Terpenes Alkyl and Aryl Transferases terpene synthase
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Gao Yang
Department of Biochemistry, Biophysics, & Molecular Biology, Iowa State University, Ames, IA 50011, USA.
Honzatko Richard B
Peters Reuben J
References (118)
118 references, click to expand
  1. Structure of epi-isozizaene synthase from Streptomyces coelicolor A3(2), a platform for new terpenoid cyclization templates.
    Biochemistry. 2010 Mar 2;49(8):1787-97 PMID: 20131801
  2. Structure and mechanism of the diterpene cyclase ent-copalyl diphosphate synthase.
    Nat Chem Biol. 2011 May 22;7(7):431-3 PMID: 21602811
  3. The structure of dimethylallyl tryptophan synthase reveals a common architecture of aromatic prenyltransferases in fungi and bacteria.
    Proc Natl Acad Sci U S A. 2009 Aug 25;106(34):14309-14 PMID: 19706516
  4. Quantum chemical dissection of the classic terpinyl/pinyl/bornyl/camphyl cation conundrum-the role of pyrophosphate in manipulating pathways to monoterpenes.
    Org Biomol Chem. 2010 Oct 21;8(20):4589-600 PMID: 20725661
  5. Crystal structure of type-III geranylgeranyl pyrophosphate synthase from Saccharomyces cerevisiae and the mechanism of product chain length determination.
    J Biol Chem. 2006 May 26;281(21):14991-5000 PMID: 16554305
  6. Structure and reaction geometry of geranylgeranyl diphosphate synthase from Sinapis alba.
    Biochemistry. 2006 Dec 26;45(51):15197-204 PMID: 17176041
  7. Alternative termination chemistries utilized by monoterpene cyclases: chimeric analysis of bornyl diphosphate, 1,8-cineole, and sabinene synthases.
    Arch Biochem Biophys. 2003 Sep 15;417(2):203-11 PMID: 12941302
  8. Crystal structure of a squalene cyclase in complex with the potential anticholesteremic drug Ro48-8071.
    Chem Biol. 2002 May;9(5):639-45 PMID: 12031670
  9. Abietadiene synthase catalysis: mutational analysis of a prenyl diphosphate ionization-initiated cyclization and rearrangement.
    Proc Natl Acad Sci U S A. 2002 Jan 22;99(2):580-4 PMID: 11805316
  10. X-ray crystallographic studies of substrate binding to aristolochene synthase suggest a metal ion binding sequence for catalysis.
    J Biol Chem. 2008 May 30;283(22):15431-9 PMID: 18385128
  11. Quantitative exploration of the catalytic landscape separating divergent plant sesquiterpene synthases.
    Nat Chem Biol. 2008 Oct;4(10):617-23 PMID: 18776889
  12. Structure and mechanism of an Arabidopsis medium/long-chain-length prenyl pyrophosphate synthase.
    Plant Physiol. 2011 Mar;155(3):1079-90 PMID: 21220764
  13. Functional plasticity of paralogous diterpene synthases involved in conifer defense.
    Proc Natl Acad Sci U S A. 2008 Jan 22;105(3):1085-90 PMID: 18198275
  14. Unearthing the roots of the terpenome.
    Curr Opin Chem Biol. 2008 Apr;12(2):141-50 PMID: 18249199
  15. Chimeras of two isoprenoid synthases catalyze all four coupling reactions in isoprenoid biosynthesis.
    Science. 2007 Apr 6;316(5821):73-6 PMID: 17412950
  16. Enzyme Mechanisms for Polycyclic Triterpene Formation.
    Angew Chem Int Ed Engl. 2000 Aug 18;39(16):2812-2833 PMID: 11027983
  17. Insights into diterpene cyclization from structure of bifunctional abietadiene synthase from Abies grandis.
    J Biol Chem. 2012 Feb 24;287(9):6840-50 PMID: 22219188
  18. Identification and functional analysis of bifunctional ent-kaurene synthase from the moss Physcomitrella patens.
    FEBS Lett. 2006 Nov 13;580(26):6175-81 PMID: 17064690
  19. Cation-pi interaction in the polyolefin cyclization cascade uncovered by incorporating unnatural amino acids into the catalytic sites of squalene cyclase.
    J Am Chem Soc. 2006 Oct 11;128(40):13184-94 PMID: 17017798
  20. Crystal structure of (+)-delta-cadinene synthase from Gossypium arboreum and evolutionary divergence of metal binding motifs for catalysis.
    Biochemistry. 2009 Jul 7;48(26):6175-83 PMID: 19489610
  21. Geranyl diphosphate synthase: cloning, expression, and characterization of this prenyltransferase as a heterodimer.
    Proc Natl Acad Sci U S A. 1999 Nov 9;96(23):13062-7 PMID: 10557273
  22. Crystal structure of human squalene synthase. A key enzyme in cholesterol biosynthesis.
    J Biol Chem. 2000 Sep 29;275(39):30610-7 PMID: 10896663
  23. Bornyl diphosphate synthase: structure and strategy for carbocation manipulation by a terpenoid cyclase.
    Proc Natl Acad Sci U S A. 2002 Nov 26;99(24):15375-80 PMID: 12432096
  24. Structure and mechanism of the magnesium-independent aromatic prenyltransferase CloQ from the clorobiocin biosynthetic pathway.
    J Mol Biol. 2010 Dec 10;404(4):611-26 PMID: 20946900
  25. Rational conversion of substrate and product specificity in a Salvia monoterpene synthase: structural insights into the evolution of terpene synthase function.
    Plant Cell. 2007 Jun;19(6):1994-2005 PMID: 17557809
  26. Structure of trichodiene synthase from Fusarium sporotrichioides provides mechanistic inferences on the terpene cyclization cascade.
    Proc Natl Acad Sci U S A. 2001 Nov 20;98(24):13543-8 PMID: 11698643
  27. Reaction kinetics, catalytic mechanisms, conformational changes, and inhibitor design for prenyltransferases.
    Biochemistry. 2009 Jul 21;48(28):6562-70 PMID: 19537817
  28. Monoterpenes in the glandular trichomes of tomato are synthesized from a neryl diphosphate precursor rather than geranyl diphosphate.
    Proc Natl Acad Sci U S A. 2009 Jun 30;106(26):10865-70 PMID: 19487664
  29. Following evolution's lead to a single residue switch for diterpene synthase product outcome.
    Proc Natl Acad Sci U S A. 2007 May 1;104(18):7397-401 PMID: 17456599
  30. Gibberellin biosynthesis in bacteria: separate ent-copalyl diphosphate and ent-kaurene synthases in Bradyrhizobium japonicum.
    FEBS Lett. 2009 Jan 22;583(2):475-80 PMID: 19121310
  31. Structure of a heterotetrameric geranyl pyrophosphate synthase from mint (Mentha piperita) reveals intersubunit regulation.
    Plant Cell. 2010 Feb;22(2):454-67 PMID: 20139160
  32. Structural basis for the exceptional in vivo efficacy of bisphosphonate drugs.
    ChemMedChem. 2006 Feb;1(2):267-73 PMID: 16892359
  33. Sesquiterpene synthases from grand fir (Abies grandis). Comparison of constitutive and wound-induced activities, and cDNA isolation, characterization, and bacterial expression of delta-selinene synthase and gamma-humulene synthase.
    J Biol Chem. 1998 Jan 23;273(4):2078-89 PMID: 9442047
  34. Structure of limonene synthase, a simple model for terpenoid cyclase catalysis.
    Proc Natl Acad Sci U S A. 2007 Mar 27;104(13):5360-5 PMID: 17372193
  35. A single residue switch converts abietadiene synthase into a pimaradiene specific cyclase.
    J Am Chem Soc. 2007 Dec 26;129(51):15736-7 PMID: 18052062
  36. A single residue switch for Mg(2+)-dependent inhibition characterizes plant class II diterpene cyclases from primary and secondary metabolism.
    J Biol Chem. 2010 Jul 2;285(27):20558-63 PMID: 20430888
  37. Squalene-hopene cyclase: catalytic mechanism and substrate recognition.
    Chem Commun (Camb). 2002 Feb 21;(4):291-301 PMID: 12120044
  38. Effect of isotopically sensitive branching on product distribution for pentalenene synthase: support for a mechanism predicted by quantum chemistry.
    J Am Chem Soc. 2012 Jul 18;134(28):11369-71 PMID: 22738258
  39. A novel pathway for sesquiterpene biosynthesis from Z,Z-farnesyl pyrophosphate in the wild tomato Solanum habrochaites.
    Plant Cell. 2009 Jan;21(1):301-17 PMID: 19155349
  40. Conversion of squalene to the pentacarbocyclic hopene.
    Chem Biol. 2004 Jan;11(1):121-6 PMID: 15113001
  41. Diterpene cyclases and the nature of the isoprene fold.
    Proteins. 2010 Aug 15;78(11):2417-32 PMID: 20602361
  42. Crystal structures of undecaprenyl pyrophosphate synthase in complex with magnesium, isopentenyl pyrophosphate, and farnesyl thiopyrophosphate: roles of the metal ion and conserved residues in catalysis.
    J Biol Chem. 2005 May 27;280(21):20762-74 PMID: 15788389
  43. Genomic organization of plant terpene synthases and molecular evolutionary implications.
    Genetics. 2001 Jun;158(2):811-32 PMID: 11404343
  44. Structural basis for bisphosphonate-mediated inhibition of isoprenoid biosynthesis.
    J Biol Chem. 2004 Mar 5;279(10):8526-9 PMID: 14672944
  45. Role of arginine-304 in the diphosphate-triggered active site closure mechanism of trichodiene synthase.
    Biochemistry. 2005 Sep 27;44(38):12719-27 PMID: 16171386
  46. Structural biology and chemistry of the terpenoid cyclases.
    Chem Rev. 2006 Aug;106(8):3412-42 PMID: 16895335
  47. Evidence for differential folding of farnesyl pyrophosphate in the active site of aristolochene synthase: a single-point mutation converts aristolochene synthase into an (E)-beta-farnesene synthase.
    Biochemistry. 2003 Jul 1;42(25):7741-7 PMID: 12820883
  48. Mechanism of the pyrophosphate migration in the enzymatic cyclization of geranyl and linalyl pyrophosphates to (+)- and (-)-bornyl pyrophosphates.
    Biochemistry. 1985 Dec 3;24(25):7077-85 PMID: 4084562
  49. Monoterpene synthases from common sage (Salvia officinalis). cDNA isolation, characterization, and functional expression of (+)-sabinene synthase, 1,8-cineole synthase, and (+)-bornyl diphosphate synthase.
    J Biol Chem. 1998 Jun 12;273(24):14891-9 PMID: 9614092
  50. Truncation of limonene synthase preprotein provides a fully active 'pseudomature' form of this monoterpene cyclase and reveals the function of the amino-terminal arginine pair.
    Biochemistry. 1998 Sep 1;37(35):12213-20 PMID: 9724535
  51. Isoprenoid biosynthesis: manifold chemistry catalyzed by similar enzymes.
    Structure. 1998 Feb 15;6(2):127-33 PMID: 9519404
  52. Structure of isoprene synthase illuminates the chemical mechanism of teragram atmospheric carbon emission.
    J Mol Biol. 2010 Sep 17;402(2):363-73 PMID: 20624401
  53. The primary diterpene synthase products of Picea abies levopimaradiene/abietadiene synthase (PaLAS) are epimers of a thermally unstable diterpenol.
    J Biol Chem. 2011 Jun 17;286(24):21145-53 PMID: 21518766
  54. Product chain-length determination mechanism of Z,E-farnesyl diphosphate synthase.
    Biochem Biophys Res Commun. 2008 Dec 5;377(1):17-22 PMID: 18790692
  55. Aristolochene synthase: mechanistic analysis of active site residues by site-directed mutagenesis.
    J Am Chem Soc. 2004 Jun 16;126(23):7212-21 PMID: 15186158
  56. Sesquarterpenes (C35 terpenes) biosynthesized via the cyclization of a linear C35 isoprenoid by a tetraprenyl-β-curcumene synthase and a tetraprenyl-β-curcumene cyclase: identification of a new terpene cyclase.
    J Am Chem Soc. 2011 Jun 29;133(25):9734-7 PMID: 21627333
  57. Functional characterization of nine Norway Spruce TPS genes and evolution of gymnosperm terpene synthases of the TPS-d subfamily.
    Plant Physiol. 2004 Aug;135(4):1908-27 PMID: 15310829
  58. Crystal structure of heterodimeric hexaprenyl diphosphate synthase from Micrococcus luteus B-P 26 reveals that the small subunit is directly involved in the product chain length regulation.
    J Biol Chem. 2011 Feb 4;286(5):3729-40 PMID: 21068379
  59. Enzyme mechanisms for triterpene cyclization: new pieces of the puzzle.
    Angew Chem Int Ed Engl. 2005 Jun 27;44(26):3966-71 PMID: 15929157
  60. The structural basis of chain length control in Rv1086.
    J Mol Biol. 2008 Aug 1;381(1):129-40 PMID: 18597781
  61. A common mechanism for branching, cyclopropanation, and cyclobutanation reactions in the isoprenoid biosynthetic pathway.
    J Am Chem Soc. 2008 Feb 13;130(6):1966-71 PMID: 18198872
  62. Structural basis for the promiscuous biosynthetic prenylation of aromatic natural products.
    Nature. 2005 Jun 16;435(7044):983-7 PMID: 15959519
  63. Electrostatic effects on (di)terpene synthase product outcome.
    Chem Commun (Camb). 2011 Apr 14;47(14):4074-80 PMID: 21305070
  64. Probing the role of the DXDD motif in Class II diterpene cyclases.
    Chembiochem. 2007 May 25;8(8):869-74 PMID: 17457817
  65. Brushes with sage.
    Arch Biochem Biophys. 2006 Apr 15;448(1-2):117-22 PMID: 16259939
  66. Structural and mechanistic analysis of trichodiene synthase using site-directed mutagenesis: probing the catalytic function of tyrosine-295 and the asparagine-225/serine-229/glutamate-233-Mg2+B motif.
    Arch Biochem Biophys. 2008 Jan 15;469(2):184-94 PMID: 17996718
  67. Structure of a three-domain sesquiterpene synthase: a prospective target for advanced biofuels production.
    Structure. 2011 Dec 7;19(12):1876-84 PMID: 22153510
  68. Interaction with the small subunit of geranyl diphosphate synthase modifies the chain length specificity of geranylgeranyl diphosphate synthase to produce geranyl diphosphate.
    J Biol Chem. 2002 Feb 1;277(5):3141-9 PMID: 11733504
  69. The molecular mechanism of nitrogen-containing bisphosphonates as antiosteoporosis drugs.
    Proc Natl Acad Sci U S A. 2006 May 16;103(20):7829-34 PMID: 16684881
  70. Structural basis for cyclic terpene biosynthesis by tobacco 5-epi-aristolochene synthase.
    Science. 1997 Sep 19;277(5333):1815-20 PMID: 9295271
  71. Crystal structure of pentalenene synthase: mechanistic insights on terpenoid cyclization reactions in biology.
    Science. 1997 Sep 19;277(5333):1820-4 PMID: 9295272
  72. Stereochemistry of water addition in triterpene synthesis: the structure of arabidiol.
    Org Lett. 2007 May 24;9(11):2183-6 PMID: 17474751
  73. Domain loss has independently occurred multiple times in plant terpene synthase evolution.
    Plant J. 2011 Dec;68(6):1051-60 PMID: 21999670
  74. Crystal structure determination of aristolochene synthase from the blue cheese mold, Penicillium roqueforti.
    J Biol Chem. 2000 Aug 18;275(33):25533-9 PMID: 10825154
  75. Designed divergent evolution of enzyme function.
    Nature. 2006 Apr 20;440(7087):1078-82 PMID: 16495946
  76. Structure and function of a squalene cyclase.
    Science. 1997 Sep 19;277(5333):1811-5 PMID: 9295270
  77. X-ray crystal structure of aristolochene synthase from Aspergillus terreus and evolution of templates for the cyclization of farnesyl diphosphate.
    Biochemistry. 2007 Feb 20;46(7):1941-51 PMID: 17261032
  78. Bisphosphonates target multiple sites in both cis- and trans-prenyltransferases.
    Proc Natl Acad Sci U S A. 2007 Jun 12;104(24):10022-7 PMID: 17535895
  79. The crystal structure of human geranylgeranyl pyrophosphate synthase reveals a novel hexameric arrangement and inhibitory product binding.
    J Biol Chem. 2006 Aug 4;281(31):22004-22012 PMID: 16698791
  80. Identification and functional characterization of monofunctional ent-copalyl diphosphate and ent-kaurene synthases in white spruce reveal different patterns for diterpene synthase evolution for primary and secondary metabolism in gymnosperms.
    Plant Physiol. 2010 Mar;152(3):1197-208 PMID: 20044448
  81. Insight into steroid scaffold formation from the structure of human oxidosqualene cyclase.
    Nature. 2004 Nov 4;432(7013):118-22 PMID: 15525992
  82. Plant terpenoid synthases: molecular biology and phylogenetic analysis.
    Proc Natl Acad Sci U S A. 1998 Apr 14;95(8):4126-33 PMID: 9539701
  83. Physical constraints on sesquiterpene diversity arising from cyclization of the eudesm-5-yl carbocation.
    J Am Chem Soc. 2011 Aug 17;133(32):12632-41 PMID: 21714557
  84. Crystal structure of cis-prenyl chain elongating enzyme, undecaprenyl diphosphate synthase.
    Proc Natl Acad Sci U S A. 2001 Apr 10;98(8):4337-42 PMID: 11287651
  85. The family of terpene synthases in plants: a mid-size family of genes for specialized metabolism that is highly diversified throughout the kingdom.
    Plant J. 2011 Apr;66(1):212-29 PMID: 21443633
  86. A molecular ruler for chain elongation catalyzed by octaprenyl pyrophosphate synthase and its structure-based engineering to produce unprecedented long chain trans-prenyl products.
    Biochemistry. 2004 Jun 22;43(24):7678-86 PMID: 15196010
  87. X-ray crystal structures of D100E trichodiene synthase and its pyrophosphate complex reveal the basis for terpene product diversity.
    Biochemistry. 2002 Feb 12;41(6):1732-41 PMID: 11827517
  88. Monoterpene and sesquiterpene synthases and the origin of terpene skeletal diversity in plants.
    Phytochemistry. 2009 Oct-Nov;70(15-16):1621-37 PMID: 19793600
  89. Stereochemistry of the cyclization-rearrangement of (+)-copalyl diphosphate to (-)-abietadiene catalyzed by recombinant abietadiene synthase from Abies grandis.
    Org Lett. 2000 Mar 9;2(5):573-6 PMID: 10814381
  90. Identifying and manipulating structural determinates linking catalytic specificities in terpene synthases.
    Proc Natl Acad Sci U S A. 2006 Jun 27;103(26):9826-31 PMID: 16785438
  91. The isoprene rule and the biogenesis of terpenic compounds.
    Experientia. 1953 Oct 15;9(10):357-67 PMID: 13116962
  92. Crystal structure of recombinant farnesyl diphosphate synthase at 2.6-A resolution.
    Biochemistry. 1994 Sep 13;33(36):10871-7 PMID: 8086404
  93. Abietadiene synthase from grand fir (Abies grandis): characterization and mechanism of action of the "pseudomature" recombinant enzyme.
    Biochemistry. 2000 Dec 19;39(50):15592-602 PMID: 11112547
  94. Regulation of product chain length by isoprenyl diphosphate synthases.
    Proc Natl Acad Sci U S A. 1996 Dec 24;93(26):15018-23 PMID: 8986756
  95. Pentalenene synthase. Analysis of active site residues by site-directed mutagenesis.
    J Am Chem Soc. 2002 Jul 3;124(26):7681-9 PMID: 12083921
  96. Engineering cotton (+)-delta-cadinene synthase to an altered function: germacrene D-4-ol synthase.
    Chem Biol. 2006 Jan;13(1):91-8 PMID: 16426975
  97. Enzymes encoded by the farnesyl diphosphate synthase gene family in the Big Sagebrush Artemisia tridentata ssp. spiciformis.
    J Biol Chem. 2003 Aug 22;278(34):32132-40 PMID: 12782626
  98. Homodimeric hexaprenyl pyrophosphate synthase from the thermoacidophilic crenarchaeon Sulfolobus solfataricus displays asymmetric subunit structures.
    J Bacteriol. 2005 Dec;187(23):8137-48 PMID: 16291686
  99. The structure and evolution of alpha/beta barrel proteins.
    FASEB J. 1995 Apr;9(7):497-503 PMID: 7737457
  100. Divergent evolution of oxidosqualene cyclases in plants.
    New Phytol. 2012 Mar;193(4):1022-1038 PMID: 22150097
  101. Chrysanthemyl diphosphate synthase. The relationship among chain elongation, branching, and cyclopropanation reactions in the isoprenoid biosynthetic pathway.
    J Am Chem Soc. 2003 Jun 11;125(23):6886-8 PMID: 12783539
  102. Evident and latent plasticity across the rice diterpene synthase family with potential implications for the evolution of diterpenoid metabolism in the cereals.
    Biochem J. 2011 May 1;435(3):589-95 PMID: 21323642
  103. Chrysanthemyl diphosphate synthase: isolation of the gene and characterization of the recombinant non-head-to-tail monoterpene synthase from Chrysanthemum cinerariaefolium.
    Proc Natl Acad Sci U S A. 2001 Apr 10;98(8):4373-8 PMID: 11287653
  104. The structure of the membrane protein squalene-hopene cyclase at 2.0 A resolution.
    J Mol Biol. 1999 Feb 12;286(1):175-87 PMID: 9931258
  105. Mechanism of product chain length determination and the role of a flexible loop in Escherichia coli undecaprenyl-pyrophosphate synthase catalysis.
    J Biol Chem. 2001 Dec 14;276(50):47474-82 PMID: 11581264
  106. Challenges posed to bornyl diphosphate synthase: diverging reaction mechanisms in monoterpenes.
    J Am Chem Soc. 2010 May 12;132(18):6349-60 PMID: 20394387
  107. Biosynthesis via carbocations: theoretical studies on terpene formation.
    Nat Prod Rep. 2011 Jun;28(6):1035-53 PMID: 21541432
  108. Molecular recognition of the substrate diphosphate group governs product diversity in trichodiene synthase mutants.
    Biochemistry. 2005 Apr 26;44(16):6153-63 PMID: 15835903
  109. Two rings in them all: the labdane-related diterpenoids.
    Nat Prod Rep. 2010 Nov;27(11):1521-30 PMID: 20890488
  110. Bifunctional abietadiene synthase: free diffusive transfer of the (+)-copalyl diphosphate intermediate between two distinct active sites.
    J Am Chem Soc. 2001 Sep 19;123(37):8974-8 PMID: 11552804
  111. An oxidosqualene cyclase makes numerous products by diverse mechanisms: a challenge to prevailing concepts of triterpene biosynthesis.
    J Am Chem Soc. 2007 Sep 12;129(36):11213-22 PMID: 17705488
  112. Mechanism of abietadiene synthase catalysis: stereochemistry and stabilization of the cryptic pimarenyl carbocation intermediates.
    J Am Chem Soc. 2002 Jun 19;124(24):6998-7006 PMID: 12059223
  113. Stabilisation of eudesmane cation by tryptophan 334 during aristolochene synthase catalysis.
    Chem Commun (Camb). 2003 Sep 7;(17):2162-3 PMID: 13678181
  114. Crystal structure of octaprenyl pyrophosphate synthase from hyperthermophilic Thermotoga maritima and mechanism of product chain length determination.
    J Biol Chem. 2004 Feb 6;279(6):4903-12 PMID: 14617622
  115. Structural elucidation of cisoid and transoid cyclization pathways of a sesquiterpene synthase using 2-fluorofarnesyl diphosphates.
    ACS Chem Biol. 2010 Apr 16;5(4):377-92 PMID: 20175559
  116. Increasing complexity of a diterpene synthase reaction with a single residue switch.
    J Am Chem Soc. 2008 Apr 23;130(16):5400-1 PMID: 18366162
  117. Abietadiene synthase catalysis: conserved residues involved in protonation-initiated cyclization of geranylgeranyl diphosphate to (+)-copalyl diphosphate.
    Biochemistry. 2002 Feb 12;41(6):1836-42 PMID: 11827528
  118. Taxadiene synthase structure and evolution of modular architecture in terpene biosynthesis.
    Nature. 2011 Jan 6;469(7328):116-20 PMID: 21160477
Article Info
Journal
Natural product reports
Abbr.
Nat Prod Rep
ISSN
1460-4752
Published
2012-10-00
Epub
2012-00-21
Pages
1153-75
Language
English
Region
England
NLM ID
8502408
PMCID
PMC3448952
Subset
IM
Grants
NINDS NIH HHS · R01 NS010546 · United States
NINDS NIH HHS · R56 NS010546 · United States
NIGMS NIH HHS · R01 GM076324 · United States
NIGMS NIH HHS · GM076324 · United States
NINDS NIH HHS · NS010546 · United States
NINDS NIH HHS · F32 NS010546 · United States
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