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HORT640 - Metabolic Plant Physiology
References, triacylglycerol
Abbadi A, Domergue F, Bauer J, Napier JA, Welti R, Zahringer U, Cirpus P, Heinz E. Biosynthesis of very-long-chain polyunsaturated fatty acids in transgenic oilseeds: constraints on their accumulation. Plant Cell 16: 2734-2748 (2004).
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Bates PD, Durrett TP, Ohlrogge JB, Pollard M. Analysis of acyl fluxes through multiple pathways of triacylglycerol synthesis in developing soybean embryos. Plant Physiol. 150: 55-72 (2009).
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Burgal J, Shockey J, Lu C, Dyer J, Larson T, Graham I, Browse J. Metabolic engineering of hydroxy fatty acid production in plants: RcDGAT2 drives dramatic increases in ricinoleate levels in seed oil. Plant Biotechnol. J. 6: 819-831 (2008).
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Crane J, Miller AL, Van Roekel JW, Walters C. Triacylglycerols determine the unusual storage physiology of Cuphea seed. Planta 217: 699-708 (2003).
Durrett TP, Benning C, Ohlrogge J. Plant triacylglycerols as feedstocks for the production of biofuels. Plant J. 54: 593-607 (2008).
Eastmond PJ. MONODEHYROASCORBATE REDUCTASE4 is required for seed storage oil hydrolysis and postgerminative growth in Arabidopsis. Plant Cell 19: 1376-1387 (2007).
Eastmond PJ. SUGAR-DEPENDENT1 encodes a patatin domain triacylglycerol lipase that initiates storage oil breakdown in germinating Arabidopsis seeds. Plant Cell 18: 665-675 (2006).
Eastmond PJ, Jones RL. Hormonal regulation of gluconeogenesis in cereal aleurone is strongly cultivar-dependent and gibberellin action involves SLENDER1 but not GAMYB. Plant J. 44: 483-493 (2005).
Eccleston VS, Ohlrogge JB. Expression of lauroyl-acyl carrier protein thioesterase in Brassica napus seeds induces pathways for both fatty acid oxidation and biosynthesis and implies a set point for triacylglycerol accumulation. Plant Cell 10: 613-622 (1998).
Eckardt NA. Peroxisomal citrate synthase provides exit route from fatty acid metabolism in oilseeds. Plant Cell 17: 1863-1865 (2005).
Elzinga BM, Havinga R, Baller JF, Wolters H, Bloks V, Mensenkamp AR, Kuipers F, Verkade HJ. The role of transhepatic bile salt flux in the control of hepatic secretion of triacylglycerol-rich lipoproteins in vivo in rodents. Biochim. Biophys. Acta 1573: 9-20 (2002).
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Focks N, Benning C. wrinkled1: A novel, low-seed-oil mutant of Arabidopsis with a deficiency in the seed-specific regulation of carbohydrate metabolism. Plant Physiol. 118: 91-101 (1998).
Fraser TC, Qi B, Elhussein S, Chatrattanakunchai S, Stobart AK, Lazarus CM. Expression of the isochrysis c18-delta9 polyunsaturated fatty acid specific elongase component alters Arabidopsis glycerolipid profiles. Plant Physiol. 135: 859-866 (2004).
Gaude N, Brehelin C, Tischendorf G, Kessler F, Dormann P. Nitrogen deficiency in Arabidopsis affects galactolipid composition and gene expression and results in accumulation of fatty acid phytyl esters. Plant J. 49: 729-739 (2007).
Gerhardt B, Fischer K, Balkenhohl TJ, Pohnert G, Kuhn H, Wasternack C, Feussner I. Lipoxygenase-mediated metabolism of storage lipids in germinating sunflower cotyledons and beta-oxidation of (9Z,11E,13S)-13-hydroxy-octadeca-9,11-dienoic acid by the cotyledonary glyoxysomes. Planta 220: 919-930 (2005).
Germain V, Rylott EL, Larson TR, Sherson SM, Bechtold N, Carde JP, Bryce JH, Graham IA, Smith SM. Requirement for 3-ketoacyl-CoA thiolase-2 in peroxisome development, fatty acid beta-oxidation and breakdown of triacylglycerol in lipid bodies of Arabidopsis seedlings. Plant J. 28: 1-12 (2001).
Goepfert S, Poirier Y. Beta-oxidation in fatty acid degradation and beyond. Curr. Opin. Plant Biol. 10: 245-251 (2007).
Goncharova SN, Kostetsky EY, Sanina NM. The effect of seasonal shifts in temperature on the lipid composition of marine macrophytes. Russ. J. Plant Physiol. 51: 169-175 (2004).
Graham IA. Seed storage oil mobilization. Annu. Rev. Plant Biol. 59: 115-142 (2008).
Graham IA, Larson T, Napier JA. Rational metabolic engineering of transgenic plants for biosynthesis of omega-3 polyunsaturates. Curr. Opin. Biotechnol. 18: 142-147 (2007).
Guschina IA, Harwood JL. Lead and copper effects on lipid metabolism in cultured lichen photobionts with different phosphorus status. Phytochemistry 67: 1731-1739 (2006).
Guschina IA, Harwood JL. Lipid metabolism in the moss Rhytidiadelphus squarrosus (Hedw.) Warnst. from lead-contaminated and non-contaminated populations. J. Exp. Bot. 53: 455-463 (2002).
Hernandez ML, Guschina IA, Martinez-Rivas JM, Mancha M, Harwood JL. The utilization and desaturation of oleate and linoleate during glycerolipid biosynthesis in olive (Olea europaea L.) callus cultures. J. Exp. Bot. 59: 2425-2435 (2008).
Hernandez-Pinzon I, Ross JH, Barnes KA, Damant AP, Murphy DJ. Composition and role of tapetal lipid bodies in the biogenesis of the pollen coat of Brassica napus. Planta 208: 588-598 (1999).
Hong H, Datla N, Reed DW, Covello PS, MacKenzie SL, Qiu X. High-level production of gamma-linolenic acid in Brassica juncea using a Delta6 desaturase from Pythium irregulare. Plant Physiol. 129: 354-362 (2002).
Hooks MA, Fleming Y, Larson TR, Graham IA. No induction of beta-oxidation in leaves of Arabidopsis that over-produce lauric acid. Planta 207: 385-392 (1999).
Hsieh K, Huang AH. Lipid-rich tapetosomes in Brassica tapetum are composed of oleosin-coated oil droplets and vesicles, both assembled in and then detached from the endoplasmic reticulum. Plant J. 43: 889-899 (2005).
Hu Q, Sommerfeld M, Jarvis E, Ghirardi M, Posewitz M, Seibert M, Darzins A. Microalgal triacylglycerols as feedstocks for biofuel production: perspectives and advances. Plant J. 54: 621-639 (2008).
Ichihara K, Suda Y. Lipid biosynthesis in developing perilla seeds. Phytochemistry 63: 139-143 (2003).
Jadhav AS, Taylor DC, Giblin M, Ferrie AM, Ambrose SJ, Ross AR, Nelson KM, Irina Zaharia L, Sharma N, Anderson M, Fobert PR, Abrams SR. Hormonal regulation of oil accumulation in Brassica seeds: metabolism and biological activity of ABA, 7'-, 8'- and 9'-hydroxy ABA in microspore derived embryos of B. napus. Phytochemistry 69: 2678-2688 (2008).
Jako C, Kumar A, Wei Y, Zou J, Barton DL, Giblin EM, Covello PS, Taylor DC. Seed-specific over-expression of an Arabidopsis cDNA encoding a diacylglycerol acyltransferase enhances seed oil content and seed weight. Plant Physiol. 126: 861-874 (2001).
Katavic V, Reed DW, Taylor DC, Giblin EM, Barton DL, Zou J, Mackenzie SL, Covello PS, Kunst L. Alteration of seed fatty acid composition by an ethyl methanesulfonate-induced mutation in Arabidopsis thaliana affecting diacylglycerol acyltransferase activity. Plant Physiol. 108: 399-409 (1995).
Kaup MT, Froese CD, Thompson JE. A role for diacylglycerol acyltransferase during leaf senescence. Plant Physiol. 129: 1616-1626 (2002).
Khozin-Goldberg I, Cohen Z. The effect of phosphate starvation on the lipid and fatty acid composition of the fresh water eustigmatophyte Monodus subterraneus. Phytochemistry 67: 696-701 (2006).
Kim MJ, Kim JK, Shin JS, Suh MC. The SebHLH transcription factor mediates trans-activation of the SeFAD2 gene promoter through binding to E- and G-box elements. Plant Mol. Biol. 64: 453-466 (2007).
King A, Nam JW, Han J, Hilliard J, Jaworski JG. Cuticular wax biosynthesis in petunia petals: cloning and characterization of an alcohol-acyltransferase that synthesizes wax-esters. Planta 226: 381-394 (2007).
Kinney AJ. Manipulating flux through plant metabolic pathways. Curr. Opin. Plant Biol. 1: 173-178 (1998).
Klaus D, Ohlrogge JB, Neuhaus HE, Dormann P. Increased fatty acid production in potato by engineering of acetyl-CoA carboxylase. Planta 219: 389-396 (2004).
Knutzon DS, Hayes TR, Wyrick A, Xiong H, Maelor Davies H, Voelker TA. Lysophosphatidic acid acyltransferase from coconut endosperm mediates the insertion of laurate at the sn-2 position of triacylglycerols in lauric rapeseed oil and can increase total laurate levels. Plant Physiol. 120: 739-746 (1999).
Kostetsky EY, Goncharova SN, Sanina NM, Shnyrov VL. Season influence on lipid composition of marine macrophytes. Bot. Marina 47: 134-139 (2004).
Kroon JT, Wei W, Simon WJ, Slabas AR. Identification and functional expression of a type 2 acyl-CoA:diacylglycerol acyltransferase (DGAT2) in developing castor bean seeds which has high homology to the major triglyceride biosynthetic enzyme of fungi and animals. Phytochemistry 67: 2541-2549 (2006).
Lassner MW, Levering CK, Davies HM, Knutzon DS. Lysophosphatidic acid acyltransferase from meadowfoam mediates insertion of erucic acid at the sn-2 position of triacylglycerol in transgenic rapeseed oil. Plant Physiol. 109: 1389-1394 (1995).
Li F, Wu X, Lam P, Bird D, Zheng H, Samuels L, Jetter R, Kunst L. Identification of the wax ester synthase/acyl-CoA:diacylglycerol acyltransferase WSD1 required for stem wax ester biosynthesis in Arabidopsis thaliana. Plant Physiol. 148: 97-107 (2008).
Li F, Wu X, Tsang E, Cutler AJ. Transcriptional profiling of imbibed Brassica napus seed. Genomics 86: 718-730 (2005).
Lin M, Oliver DJ. The role of acetyl-coenzyme A synthetase in Arabidopsis. Plant Physiol. 147: 1822-1829 (2008).
Lin Y, Cluette-Brown JE, Goodman HM. The peroxisome deficient Arabidopsis mutant sse1 exhibits impaired fatty acid synthesis. Plant Physiol. 135: 814-827 (2004).
Lu C, Hills MJ. Arabidopsis mutants deficient in diacylglycerol acyltransferase display increased sensitivity to abscisic acid, sugars, and osmotic stress during germination and seedling development. Plant Physiol. 129: 1352-1358 (2002).
Lu CL, de Noyer SB, Hobbs DH, Kang J, Wen Y, Krachtus D, Hills MJ. Expression pattern of diacylglycerol acyltransferase-1, an enzyme involved in triacylglycerol biosynthesis, in Arabidopsis thaliana. Plant Mol. Biol. 52: 31-41 (2003).
Madey E, Nowack LM, Thompson JE. Isolation and characterization of lipid in phloem sap of canola. Planta 214: 625-634 (2002).
Malanovic N, Streith I, Wolinski H, Rechberger G, Kohlwein SD, Tehlivets O. S-Adenosyl-L-homocysteine hydrolase, key enzyme of methylation metabolism, regulates phosphatidylcholine synthesis and triacylglycerol homeostasis in yeast: implications for homocysteine as a risk factor of atherosclerosis. J. Biol. Chem. 283: 23989-23999 (2008).
Manaf AM, Harwood JL. Purification and characterisation of acyl-CoA: glycerol 3-phosphate acyltransferase from oil palm (Elaeis guineensis) tissues. Planta 210: 318-328 (2000).
Marillia EF, Micallef BJ, Micallef M, Weninger A, Pedersen KK, Zou J, Taylor DC. Biochemical and physiological studies of Arabidopsis thaliana transgenic lines with repressed expression of the mitochondrial pyruvate dehydrogenase kinase. J. Exp. Bot. 54: 259-270 (2003).
Matsui K, Fukutomi S, Ishii M, Kajiwara T. A tomato lipase homologous to DAD1 (LeLID1) is induced in post-germinative growing stage and encodes a triacylglycerol lipase. FEBS Lett. 569: 195-200 (2004).
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Nguyen HT, Dieterich A, Athenstaedt K, Truong NH, Stahl U, Nevoigt E. Engineering of Saccharomyces cerevisiae for the production of l-glycerol 3-phosphate. Metab. Eng. 6: 155-163 (2004).
Ohlrogge JB, Jaworski JG. Regulation of fatty acid synthesis. Annu. Rev. Plant Physiol. Plant Mol. Biol. 48: 109-136 (1997).
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Pracharoenwattana I, Cornah JE, Smith SM. Arabidopsis peroxisomal citrate synthase is required for fatty acid respiration and seed germination. Plant Cell 17: 2037-2048 (2005).
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Quettier AL, Shaw E, Eastmond PJ. SUGAR-DEPENDENT6 encodes a mitochondrial FAD-dependent glycerol-3-phosphate dehydrogenase, which is required for glycerol catabolism and post-germinative seedling growth in Arabidopsis. Plant Physiol. 148: 519-528 (2008).
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Shockey JM, Gidda SK, Chapital DC, Kuan JC, Dhanoa PK, Bland JM, Rothstein SJ, Mullen RT, Dyer JM. Tung tree DGAT1 and DGAT2 have nonredundant functions in triacylglycerol biosynthesis and are localized to different subdomains of the endoplasmic reticulum. Plant Cell 18: 2294-2313 (2006).
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Number of references = 130
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