Linolenate 9R-Dioxygenase and Allene Oxide Synthase Activities of Lasiodiplodia theobromae

Lipids - Tập 47 - Trang 65-73 - 2011
Fredrik Jernerén1, Felipe Eng2, Mats Hamberg3, Ernst H. Oliw1
1Department of Pharmaceutical Biosciences, Uppsala Biomedical Center, Uppsala University, Uppsala, Sweden
2Cuban Research Institute on Sugar Cane Byproducts, Havana, Cuba
3Department of Medical Biochemistry and Biophysics, Karolinska Institutet, Stockholm, Sweden

Tóm tắt

Jasmonic acid (JA) is synthesized from linolenic acid (18:3n-3) by sequential action of 13-lipoxygenase, allene oxide synthase (AOS), and allene oxide cyclase. The fungus Lasiodiplodia theobromae can produce large amounts of JA and was recently reported to form the JA precursor 12-oxophytodienoic acid. The objective of our study was to characterize the fatty acid dioxygenase activities of this fungus. Two strains of L. theobromae with low JA secretion (~0.2 mg/L medium) oxygenated 18:3n-3 to 5,8-dihydroxy-9Z,12Z,15Z-octadecatrienoic acid as well as 9R-hydroperoxy-10E,12Z,15Z-octadecatrienoic acid, which was metabolized by an AOS activity into 9-hydroxy-10-oxo-12Z,15Z-octadecadienoic acid. Analogous conversions were observed with linoleic acid (18:2n-6). Studies using [11S-2H]18:2n-6 revealed that the putative 9R-dioxygenase catalyzed stereospecific removal of the 11R hydrogen followed by suprafacial attack of dioxygen at C-9. Mycelia from these strains of L. theobromae contained 18:2n-6 as the major polyunsaturated acid but lacked 18:3n-3. A third strain with a high secretion of JA (~200 mg/L) contained 18:3n-3 as a major fatty acid and produced 5,8-dihydroxy-9Z,12Z,15Z-octadecatrienoic acid from added 18:3n-3. This strain also lacked the JA biosynthetic enzymes present in higher plants.

Tài liệu tham khảo

Schaller A, Stintzi A (2009) Enzymes in jasmonate biosynthesis—structure, function, regulation. Phytochem 70:1532–1538 Wasternack C, Kombrink E (2010) Jasmonates: structural requirements for lipid-derived signals active in plant stress responses and development. ACS Chem Biol 5:63–77 Gfeller A, Dubugnon L, Liechti R, Farmer EE (2010) Jasmonate biochemical pathway. Sci Signal 3:1–6 Cross BE, Webster GRB (1970) New metabolites of Gibberella fujikuroi. J Chem Soc C 1970:1838–1842 Aldridge D, Galt S, Giles D, Turner W (1971) Metabolites of Lasiodiplodia theobromae. J Chem Soc C 1971:1623–1627 Miersch O, Bohlmann H, Wasternack C (1999) Jasmonates and related compounds from Fusarium oxysporum. Phytochem 50:517–523 Wasternack C (2007) Jasmonates: an update on biosynthesis, signal transduction and action in plant stress response, growth and development. Ann Bot 100:681–697 Goodrich-Tanrikulu M, Mahoney NE, Rodriguez SB (1995) The plant growth regulator methyl jasmonate inhibits aflatoxin production by Aspergillus flavus. Microbiol 141:2831–2837 Cohen S, Flescher E (2009) Methyl jasmonate: a plant stress hormone as an anti-cancer drug. Phytochem 70:1600–1609 Tsukada K, Takahashi K, Nabeta K (2010) Biosynthesis of jasmonic acid in a plant pathogenic fungus, Lasiodiplodia theobromae. Phytochem 71:2019–2023 Miersch O, Preiss A, Sembdner G, Schreiber K (1987) (+)-7-iso-jasmonic acid and related compounds from Botryodiplodia theobromae. Phytochem 26:1037–1039 Lee DS, Nioche P, Hamberg M, Raman CS (2008) Structural insights into the evolutionary paths of oxylipin biosynthetic enzymes. Nature 455:363–368 Brodowsky ID, Hamberg M, Oliw EH (1992) A linoleic acid (8R)-dioxygenase and hydroperoxide isomerase of the fungus Gaeumannomyces graminis. Biosynthesis of (8R)-hydroxylinoleic acid and (7S, 8S)-dihydroxylinoleic acid from (8R)-hydroperoxylinoleic acid. J Biol Chem 267:14738–14745 Brodhun F, Göbel C, Hornung E, Feussner I (2009) Identification of PpoA from Aspergillus nidulans as a fusion protein of a fatty acid heme dioxygenase/peroxidase and a cytochrome P450. J Biol Chem 284:11792–11805 Brodhun F, Schneider S, Göbel C, Hornung E, Feussner I (2010) PpoC from Aspergillus nidulans is a fusion protein with one active heme. J Biochem 425:553–565 Garscha U, Oliw EH (2009) Leucine/valine residues direct oxygenation of linoleic acid by (10R)- and (8R)-dioxygenases: expression and site-directed mutagenesis of (10R)-dioxygenase with epoxyalcohol synthase activity. J Biol Chem 284:13755–13765 Jernerén F, Hoffmann I, Oliw EH (2010) Linoleate 9R-dioxygenase and allene oxide synthase activities of Aspergillus terreus. Arch Biochem Biophys 495:67–73 (Erratum 2010; 500; 210) Dhandhukia PC, Thakkar VR (2008) Response surface methodology to optimize the nutritional parameters for enhanced production of jasmonic acid by Lasiodiplodia theobromae. J Appl Microbiol 105:636–643 Eng F, Gutierrez-Rojas M, Favela-Torres E (1998) Culture conditions for jasmonic acid and biomass production by Botryodiplodia theobromae in submerged fermentation. Process Biochem 33:715–720 Hamberg M, Zhang LY, Brodowsky ID, Oliw EH (1994) Sequential oxygenation of linoleic acid in the fungus Gaeumannomyces graminis: stereochemistry of dioxygenase and hydroperoxide isomerase reactions. Arch Biochem Biophys 309:77–80 Garscha U, Jernerén F, Chung D, Keller NP, Hamberg M, Oliw EH (2007) Identification of dioxygenases required for Aspergillus development. Studies of products, stereochemistry, and the reaction mechanism. J Biol Chem 282:34707–34718 Matthew JA, Chan HW, Galliard T (1977) A simple method for the preparation of pure 9-d-hydroperoxide of linoleic acid and methyl linoleate based on the positional specificity of lipoxygenase in tomato fruit. Lipids 12:324–326 Cristea M, Engström Å, Su C, Hörnsten L, Oliw EH (2005) Expression of manganese lipoxygenase in Pichia pastoris and site-directed mutagenesis of putative metal ligands. Arch Biochem Biophys 434:201–211 Oliw EH, Jernerén F, Hoffmann I, Sahlin M, Garscha U (2011) Manganese lipoxygenase oxidizes bis-allylic hydroperoxides and octadecenoic acids by different mechanisms. Biochim Biophys Acta 1811:138–147 Oliw EH, Wennman A, Hoffmanna I, Garscha U, Hamberg M, Jernerén F Stereoselective oxidation of regioisomeric octadecenoic acids by fatty acid dioxygenases. J Lipid Res 52:1995–2004 Garscha U, Nilsson T, Oliw EH (2008) Enantiomeric separation and analysis of unsaturated hydroperoxy fatty acids by chiral column chromatography–mass spectrometry. J Chromatogr B Analyt Technol Biomed Life Sci 872:90–98 Jernerén F, Sesma A, Franceschetti M, Hamberg M, Oliw EH (2010) Gene deletion of 7,8-linoleate diol synthase of the rice blast fungus: studies on pathogenicity, stereochemistry, and oxygenation mechanisms. J Biol Chem 285:5308–5316 Garscha U, Oliw EH (2007) Steric analysis of 8-hydroxy- and 10-hydroxyoctadecadienoic acids and dihydroxyoctadecadienoic acids formed from 8R-hydroperoxylinoleic acid by hydroperoxide isomerases. Anal Biochem 367:238–246 Martinez E, Hamberg M, Busquets M, Diaz P, Manresa A, Oliw EH (2010) Biochemical characterization of the oxygenation of unsaturated fatty acids by the dioxygenase and hydroperoxide isomerase of Pseudomonas aeruginosa 42A2. J Biol Chem 285:9339–9345 Oliw EH, Su C, Skogström T, Benthin G (1998) Analysis of novel hydroperoxides and other metabolites of oleic, linoleic, and linolenic acids by liquid chromatography–mass spectrometry with ion trap MSn. Lipids 33:843–852 Hoffmann I, Jernerén F, Garscha U, Oliw EH (2011) Expression of 5,8-LDS of Aspergillus fumigatus and its dioxygenase domain. A comparison with 7,8-LDS, 10-dioxygenase, and cyclooxygenase. Arch Biochem Biophys 506:216–222 Cristea M, Oliw EH (2007) On the singular, dual, and multiple positional specificity of manganese lipoxygenase and its G316A mutant. J Lipid Res 48:890–903 Gao B, Boeglin WE, Brash AR (2010) Omega-3 fatty acids are oxygenated at the n-7 carbon by the lipoxygenase domain of a fusion protein in the cyanobacterium Acaryochloris marina. Biochim Biophys Acta 1801:58–63 Hamberg M, Su C, Oliw E (1998) Manganese lipoxygenase. Discovery of a bis-allylic hydroperoxide as product and intermediate in a lipoxygenase reaction. J Biol Chem 273:13080–13088 Hamberg M (2000) New cyclopentenone fatty acids formed from linoleic and linolenic acids in potato. Lipids 35:353–363 Grechkin AN, Mukhtarova LS, Latypova LR, Gogolev Y, Toporkova YY, Hamberg M (2008) Tomato CYP74C3 is a multifunctional enzyme not only synthesizing allene oxide but also catalyzing its hydrolysis and cyclization. Chembiochem 9:2498–2505