Back to Search
Start Over
A grape polyphenol extract modulates muscle membrane fatty acid composition and lipid metabolism in high-fat--high-sucrose diet-fed rats
- Source :
- British Journal of Nutrition, British Journal of Nutrition, Cambridge University Press (CUP), 2011, 106 (4), pp.491-501. ⟨10.1017/s0007114511000602⟩
- Publication Year :
- 2011
-
Abstract
- Accumulation of muscle TAG content and modification of muscle phospholipid fatty acid pattern may have an impact on lipid metabolism, increasing the risk of developing diabetes. Some polyphenols have been reported to modulate lipid metabolism, in particular those issued from red grapes. The present study was designed to determine whether a grape polyphenol extract (PPE) modulates skeletal muscle TAG content and phospholipid fatty acid composition in high-fat–high-sucrose (HFHS) diet-fed rats. Muscle plasmalemmal and mitochondrial fatty acid transporters, GLUT4 and lipid metabolism pathways were also explored. The PPE decreased muscle TAG content in HFHS/PPE diet-fed rats compared with HFHS diet-fed rats and induced higher proportions ofn-3 PUFA in phospholipids. The PPE significantly up-regulated GLUT4 mRNA expression. Gene and protein expression of muscle fatty acid transporter cluster of differentiation 36 (CD36) was increased in HFHS diet-fed rats but returned to control values in HFHS/PPE diet-fed rats. Carnitine palmitoyltransferase 1 protein expression was decreased with the PPE. Mitochondrial β-hydroxyacyl CoA dehydrogenase was increased in HFHS diet-fed rats and returned to control values with PPE supplementation. Lipogenesis, mitochondrial biogenesis and mitochondrial activity were not affected by the PPE. In conclusion, the PPE modulated membrane phospholipid fatty acid composition and decreased muscle TAG content in HFHS diet-fed rats. The PPE lowered CD36 gene and protein expression, probably decreasing fatty acid transport and lipid accumulation within skeletal muscle, and increased muscle GLUT4 expression. These effects of the PPE are in favour of a better insulin sensibility.
- Subjects :
- [SDV.SA]Life Sciences [q-bio]/Agricultural sciences
CD36 Antigens
Male
muscle
CD36
Medicine (miscellaneous)
glucose-uptake
resveratrol
Random Allocation
0302 clinical medicine
Dietary Sucrose
Vitis
humans
[SDV.BDD]Life Sciences [q-bio]/Development Biology
chemistry.chemical_classification
0303 health sciences
Nutrition and Dietetics
green tea polyphenols
Glucose Transporter Type 4
biology
exercise
[SDV.BA]Life Sciences [q-bio]/Animal biology
Fatty Acids
fatty acid transporters
stearoyl-coa desaturase
phospholipid fatty acid composition
medicine.anatomical_structure
Biochemistry
Lipogenesis
Polyunsaturated fatty acid
oxidation
030209 endocrinology & metabolism
insulin-resistance
03 medical and health sciences
Carnitine palmitoyltransferase 1
Phenols
medicine
Animals
RNA, Messenger
Rats, Wistar
Muscle, Skeletal
030304 developmental biology
Flavonoids
disease
Plant Extracts
Fatty acid
Skeletal muscle
Polyphenols
Lipid metabolism
sensitivity
Lipid Metabolism
Dietary Fats
Rats
chemistry
Gene Expression Regulation
Fruit
Dietary Supplements
biology.protein
Insulin Resistance
GLUT4
Phytotherapy
Subjects
Details
- ISSN :
- 14752662 and 00071145
- Volume :
- 106
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- The British journal of nutrition
- Accession number :
- edsair.doi.dedup.....335e22025569ddda76279bd7090f93f6