Metabolism of exogenous long-chain fatty acids by spinach leaves. 1987

P G Roughan, and G A Thompson, and S H Cho
Division of Horticulture and Processing, DSIR, Mt Albert Research Centre, Auckland, New Zealand.

When applied in liquid paraffin to the upper surface of expanding spinach leaves, [1-14C]palmitic acid was efficiently and exclusively incorporated into the sn-1 position of cellular glycerolipids, principally phosphatidylcholine and triacylglycerol. A slow transfer of fatty acids from phosphatidylcholine to chloroplast glycolipids subsequently occurred with the positional specificity of the label remaining intact. Labeled palmitate at the sn-1 position of monogalactosyldiacylglycerol was desaturated to hexadecatrienoate so that 1-[14C]hexadecatrienoyl-2-linolenoyl-3-galactosoylglycerol became the major labeled species of the lipid between 8 and 24 h. There was no evidence of deacylation/reacylation reactions modifying the acyl compositions of spinach leaf glycerolipids for at least 48 h after labeling with [1-14C]palmitic acid; even the partially prokaryotic glycerolipids remained firmly labeled at the sn-1 position. Exogenous [1-14C]stearic acid was also incorporated into the sn-1 position of MGD, presumably by the same mechanism, and was there desaturated to [14C]linolenate. Exogenous [1-14C]oleic acid was initially incorporated equally into both sn-1 and sn-2 positions of phosphatidylcholine, and was desaturated to linoleate at both positions before the label was rapidly transferred to monogalactosyldiacylglycerol. There, desaturation of linoleate to linolenate took place. Galactolipids remained equally labeled at both positions throughout the 6 days of the experiment, but label was concentrated in the 1-saturated-2-[14C]linolenoyl molecular species of phosphatidylcholine as those species with two [14C]linoleoyl residues were drawn off for monogalactolipid synthesis. Glycerolipids synthesised from exogenous [1-14C]acetate by spinach leaves were labeled equally at both the sn-1 and the sn-2 positions. These results are interpreted as providing strong support for the two-pathway scheme of glycerolipid synthesis in plants.

UI MeSH Term Description Entries
D009829 Oleic Acids A group of fatty acids that contain 18 carbon atoms and a double bond at the omega 9 carbon. Octadecenoic Acids,Acids, Octadecenoic,Acids, Oleic
D010169 Palmitic Acids A group of 16-carbon fatty acids that contain no double bonds. Acids, Palmitic
D010944 Plants Multicellular, eukaryotic life forms of kingdom Plantae. Plants acquired chloroplasts by direct endosymbiosis of CYANOBACTERIA. They are characterized by a mainly photosynthetic mode of nutrition; essentially unlimited growth at localized regions of cell divisions (MERISTEMS); cellulose within cells providing rigidity; the absence of organs of locomotion; absence of nervous and sensory systems; and an alternation of haploid and diploid generations. It is a non-taxonomical term most often referring to LAND PLANTS. In broad sense it includes RHODOPHYTA and GLAUCOPHYTA along with VIRIDIPLANTAE. Plant
D005227 Fatty Acids Organic, monobasic acids derived from hydrocarbons by the equivalent of oxidation of a methyl group to an alcohol, aldehyde, and then acid. Fatty acids are saturated and unsaturated (FATTY ACIDS, UNSATURATED). (Grant & Hackh's Chemical Dictionary, 5th ed) Aliphatic Acid,Esterified Fatty Acid,Fatty Acid,Fatty Acids, Esterified,Fatty Acids, Saturated,Saturated Fatty Acid,Aliphatic Acids,Acid, Aliphatic,Acid, Esterified Fatty,Acid, Saturated Fatty,Esterified Fatty Acids,Fatty Acid, Esterified,Fatty Acid, Saturated,Saturated Fatty Acids
D000085 Acetates Derivatives of ACETIC ACID. Included under this heading are a broad variety of acid forms, salts, esters, and amides that contain the carboxymethane structure. Acetate,Acetic Acid Esters,Acetic Acids,Acids, Acetic,Esters, Acetic Acid
D013229 Stearic Acids A group of compounds that are derivatives of octadecanoic acid which is one of the most abundant fatty acids found in animal lipids. (Stedman, 25th ed) Dihydrooleic Acids,Octadecanoic Acids,Tetrahydrolinoleic Acids,Acids, Dihydrooleic,Acids, Octadecanoic,Acids, Stearic,Acids, Tetrahydrolinoleic
D014675 Vegetables A food group comprised of EDIBLE PLANTS or their parts. Vegetable
D019301 Oleic Acid An unsaturated fatty acid that is the most widely distributed and abundant fatty acid in nature. It is used commercially in the preparation of oleates and lotions, and as a pharmaceutical solvent. (Stedman, 26th ed) 9-Octadecenoic Acid,Oleate,cis-9-Octadecenoic Acid,9 Octadecenoic Acid,cis 9 Octadecenoic Acid
D019308 Palmitic Acid A common saturated fatty acid found in fats and waxes including olive oil, palm oil, and body lipids. Hexadecanoic Acid,Calcium Palmitate,Sodium Palmitate,Acid, Hexadecanoic,Acid, Palmitic,Palmitate, Calcium,Palmitate, Sodium
D019342 Acetic Acid Product of the oxidation of ethanol and of the destructive distillation of wood. It is used locally, occasionally internally, as a counterirritant and also as a reagent. (Stedman, 26th ed) Glacial Acetic Acid,Vinegar,Acetic Acid Glacial,Acetic Acid, Glacial,Glacial, Acetic Acid

Related Publications

P G Roughan, and G A Thompson, and S H Cho
January 2014, Progress in lipid research,
P G Roughan, and G A Thompson, and S H Cho
March 1992, The Journal of nutrition,
P G Roughan, and G A Thompson, and S H Cho
March 1996, Plant & cell physiology,
P G Roughan, and G A Thompson, and S H Cho
January 1970, Advances in lipid research,
P G Roughan, and G A Thompson, and S H Cho
May 1967, Minerva medica,
P G Roughan, and G A Thompson, and S H Cho
February 2016, Sheng li ke xue jin zhan [Progress in physiology],
P G Roughan, and G A Thompson, and S H Cho
February 2014, Biomolecules & therapeutics,
P G Roughan, and G A Thompson, and S H Cho
January 2006, Biotechnology progress,
P G Roughan, and G A Thompson, and S H Cho
January 2023, Frontiers in bioscience (Landmark edition),
Copied contents to your clipboard!