Literature DB >> 9030189

Thia fatty acids, metabolism and metabolic effects.

S Skrede1, H N Sørensen, L N Larsen, H H Steineger, K Høvik, O S Spydevold, R Horn, J Bremer.   

Abstract

(1) The chemical properties of thia fatty acids are similar to normal fatty acids, but their metabolism (see below: points 2-6) and metabolic effects (see below: points 7-15) differ greatly from these and are dependent upon the position of the sulfur atom. (2) Long-chain thia fatty acids and alkylthioacrylic acids are activated to their CoA esters in endoplasmatic reticulum. (3) 3-Thia fatty acids cannot be beta-oxidized. They are metabolized by extramitochondrial omega-oxidation and sulfur oxidation in the endoplasmatic reticulum followed by peroxisomal beta-oxidation to short sulfoxy dicarboxylic acids. (4) 4-Thia fatty acids are beta-oxidized mainly in mitochondria to alkylthioacryloyl-CoA esters which accumulate and are slowly converted to 2-hydroxy-4-thia acyl-CoA which splits spontaneously to an alkylthiol and malonic acid semialdehyde-CoA ester. The latter presumably is hydrolyzed and metabolized to acetyl-CoA and CO2. (5) Both 3- and 4-thiastearic acid are desaturated to the corresponding thia oleic acids. (6) Long-chain 3- and 4-thia fatty acids are incorporated into phospholipids in vivo, particularly in heart, and in hepatocytes and other cells in culture. (7) Long-chain 3-thia fatty acids change the fatty acid composition of the phospholipids: in heart, the content of n-3 fatty acids increases and n-6 fatty acids decreases. (8) 3-Thia fatty acids increase fatty acid oxidation in liver through inhibition of malonyl-CoA synthesis, activation of CPT I, and induction of CPT-II and enzymes of peroxisomal beta-oxidation. Activation of fatty acid oxidation is the key to the hypolipidemic effect of 3-thia fatty acids. Also other lipid metabolizing enzymes are induced. (9) Fatty acid- and cholesterol synthesis is inhibited in hepatocytes. (10) The nuclear receptors PPAR alpha and RXR alpha are induced by 3-thia fatty acids. (11) The induction of enzymes and of PPAR alpha and RXR alpha are increased by dexamethasone and counteracted by insulin. (12) 4-Thia fatty acids inhibit fatty acid oxidation and induce fatty liver in vivo. The inhibition presumably is explained by accumulation of alkylthioacryloyl-CoA in the mitochondria. This metabolite is a strong inhibitor of CPT-II. (13) Alkylthioacrylic acids inhibits both fatty acid oxidation and esterification. Inhibition of esterification presumably follows accumulation of extramitochondrial alkylthioacryloyl-CoA, an inhibitor of microsomal glycerophosphate acyltransferase. (14) 9-Thia stearate is a strong inhibitor of the delta 9-desaturase in liver and 10-thia stearate of dihydrosterculic acid synthesis in trypanosomes. (15) Some attempts to develop thia fatty acids as drugs are also reviewed.

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Year:  1997        PMID: 9030189     DOI: 10.1016/s0005-2760(96)00138-5

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  16 in total

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2.  Optimization of methods and treatment conditions for studying effects of fatty acids on cell growth.

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Journal:  Lipids       Date:  2001-03       Impact factor: 1.880

3.  Synthesis and antifungal properties of alpha-methoxy and alpha-hydroxyl substituted 4-thiatetradecanoic acids.

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Journal:  Chem Phys Lipids       Date:  2007-06-28       Impact factor: 3.329

4.  Thia fatty acids with the sulfur atom in even or odd positions have opposite effects on fatty acid catabolism.

Authors:  Endre Dyroy; Hege Wergedahl; Jon Skorve; Oddrun A Gudbrandsen; Jon Songstad; Rolf K Berge
Journal:  Lipids       Date:  2006-02       Impact factor: 1.880

5.  AMP-activated protein kinase and ATP-citrate lyase are two distinct molecular targets for ETC-1002, a novel small molecule regulator of lipid and carbohydrate metabolism.

Authors:  Stephen L Pinkosky; Sergey Filippov; Rai Ajit K Srivastava; Jeffrey C Hanselman; Cheryl D Bradshaw; Timothy R Hurley; Clay T Cramer; Mark A Spahr; Ashley F Brant; Jacob L Houghton; Chris Baker; Mark Naples; Khosrow Adeli; Roger S Newton
Journal:  J Lipid Res       Date:  2012-11-01       Impact factor: 5.922

6.  Radiation induced oxidation of [18F]fluorothia fatty acids under cGMP manufacturing conditions.

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Review 7.  Energizing miRNA research: a review of the role of miRNAs in lipid metabolism, with a prediction that miR-103/107 regulates human metabolic pathways.

Authors:  Bernard R Wilfred; Wang-Xia Wang; Peter T Nelson
Journal:  Mol Genet Metab       Date:  2007-05-22       Impact factor: 4.797

8.  Effects of tetradecylthioacetic acid (TTA) treatment on lipid metabolism in salmon hearts-in vitro and in vivo studies.

Authors:  Regin Arge; Jens-Erik Dessen; Tone-Kari Østbye; Bente Ruyter; Magny S Thomassen; Kjell-Arne Rørvik
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9.  Anti-inflammatory effects of tetradecylthioacetic acid (TTA) in macrophage-like cells from Atlantic salmon (Salmo salar L.).

Authors:  Fabian Grammes; Harald Takle
Journal:  BMC Immunol       Date:  2011-07-20       Impact factor: 3.615

10.  Tetradecylthioacetic acid inhibits proliferation of human SW620 colon cancer cells--gene expression profiling implies endoplasmic reticulum stress.

Authors:  Anne G Lundemo; Caroline H H Pettersen; Kjetil Berge; Rolf K Berge; Svanhild A Schønberg
Journal:  Lipids Health Dis       Date:  2011-10-25       Impact factor: 3.876

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