» Articles » PMID: 7989864

Stimulation of Fatty Acid Oxidation by a 3-thia Fatty Acid Reduces Triacylglycerol Secretion in Cultured Rat Hepatocytes

Overview
Journal J Lipid Res
Publisher Elsevier
Specialty Biochemistry
Date 1994 Aug 1
PMID 7989864
Citations 17
Authors
Affiliations
Soon will be listed here.
Abstract

The present work shows that when mitochondrial beta-oxidation is stimulated by the hypolipemic, non-beta-oxidizable fatty acid analogue tetradecylthioacetic acid, there is a decrease in the secretion of triacylglycerol in cultured rat hepatocytes. In order to study the effects of tetradecylthioacetic acid in cells with different fatty acid oxidation rates, cells were grown without or with L-carnitine supplement or with addition of the beta-oxidation inhibitor L-aminocarnitine. In cells grown without and with L-carnitine in the medium, the oxidation of [1-14C]oleic acid was stimulated by tetradecylthioacetic acid, whereas it was not significantly changed by palmitic acid. In cells grown with L-aminocarnitine, oxidation of [1-14C]oleic acid was almost abolished both in the absence and in presence of tetradecylthioacetic acid. The effect of tetradecylthioacetic acid and palmitic acid on incorporation of [1-14C]oleic acid into triacylglycerol was similar under all conditions. In the presence of L-carnitine, secretion of oleic acid-labeled triacylglycerol was reduced significantly more by tetradecylthioacetic acid than by palmitic acid. The effects of tetradecylthioacetic acid and palmitic acid on secretion of oleic acid-labeled triacylglycerol were reversed in cells grown with L-aminocarnitine, where palmitic acid was the stronger inhibitor. These results were substantiated by determination of mass of triacylglycerol secreted. It is concluded that tetradecylthioacetic acid reduces secretion of triacylglycerol from rat hepatocytes mainly by acutely stimulating fatty acid oxidation.

Citing Articles

The roles of DGAT1 and DGAT2 in human myotubes are dependent on donor patho-physiological background.

Irshad Z, Lund J, Sillars A, Lovsletten N, Gharanei S, Salt I FASEB J. 2023; 37(11):e23209.

PMID: 37779421 PMC: 10947296. DOI: 10.1096/fj.202300960RR.


Knockdown of sarcolipin (SLN) impairs substrate utilization in human skeletal muscle cells.

Mengeste A, Katare P, Fernandez A, Lund J, Bakke H, Baker D Mol Biol Rep. 2022; 49(7):6005-6017.

PMID: 35364719 PMC: 9270280. DOI: 10.1007/s11033-022-07387-0.


SENP2 is vital for optimal insulin signaling and insulin-stimulated glycogen synthesis in human skeletal muscle cells.

Lund J, Krapf S, Sistek M, Bakke H, Bartesaghi S, Peng X Curr Res Pharmacol Drug Discov. 2021; 2:100061.

PMID: 34909683 PMC: 8663970. DOI: 10.1016/j.crphar.2021.100061.


The small molecule SERCA activator CDN1163 increases energy metabolism in human skeletal muscle cells.

Mengeste A, Lund J, Katare P, Ghobadi R, Bakke H, Lunde P Curr Res Pharmacol Drug Discov. 2021; 2:100060.

PMID: 34909682 PMC: 8663964. DOI: 10.1016/j.crphar.2021.100060.


Impaired Metabolic Flexibility in the Osteoarthritis Process: A Study on Transmitochondrial Cybrids.

Dalmao-Fernandez A, Lund J, Hermida-Gomez T, Vazquez-Mosquera M, Rego-Perez I, Blanco F Cells. 2020; 9(4).

PMID: 32230786 PMC: 7226768. DOI: 10.3390/cells9040809.