Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
2
pubmed:dateCreated
2011-2-3
pubmed:abstractText
The consumption of high-fat diets (HFDs) and fasting are known to increase the expression of enzymes involved in fatty acid oxidation (FAO). However, it has been reported that the ability of physiological stressors to induce enzymes of FAO in skeletal muscle is blunted with obesity. In this regard, we sought to explore the effects and potential mechanisms of an HFD on the expression of FAO enzymes in the fed and fasted state. The consumption of an HFD increased the mRNA expression or protein content of medium-chain acyl-CoA dehydrogenase (MCAD), uncoupling protein-3 (UCP3), and pyruvate dehydrogenase kinase 4 (PDK4) in the fed state. Fasting increased the mRNA expression of PDK4, MCAD, and UCP-3, and the protein content of UCP-3 in chow but not HFD rats. HFDs did not increase carnitine palmitoyl transfer-1 (CPT-1) mRNA levels in the fed state and the effects of fasting were markedly reduced compared with chow-fed rats. The expression of peroxisome-proliferator-activated receptor-? coactivator-1? (PGC-1?) was increased in muscle from HFD rats in the fed state, while PGC-1-related coactivator (PRC) was increased with fasting in chow-fed but not HFD rats. Plasma fatty acid levels were elevated in the fed state from HFD rats but not increased further with fasting, whereas fasting increased plasma fatty acids in chow-fed animals. Fasting-mediated increases in plasma epinephrine, and the activation of PKA and AMPK in skeletal muscle were similar between chow and HFD rats. p38 MAPK phosphorylation was increased with fasting in chow-fed but not HFD rats. Our findings suggest that a blunted effect of fasting on the induction of PDK4, MCAD, and UCP3 in skeletal muscle from HFD rats is likely a result of already elevated levels of these enzymes, the induction of which is associated with increases in plasma fatty acid and PGC-1?. On the other hand, a blunted induction of PRC and CPT-1 mRNA may be explained by decreases in p38 MAPK signaling.
pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
http://linkedlifedata.com/resource/pubmed/chemical/3-Hydroxyacyl CoA Dehydrogenases, http://linkedlifedata.com/resource/pubmed/chemical/AMP-Activated Protein Kinases, http://linkedlifedata.com/resource/pubmed/chemical/Acetyl-CoA C-Acyltransferase, http://linkedlifedata.com/resource/pubmed/chemical/Acyl-CoA Dehydrogenase, http://linkedlifedata.com/resource/pubmed/chemical/Blood Glucose, http://linkedlifedata.com/resource/pubmed/chemical/Carbon-Carbon Double Bond Isomerases, http://linkedlifedata.com/resource/pubmed/chemical/Carnitine O-Palmitoyltransferase, http://linkedlifedata.com/resource/pubmed/chemical/Cyclic AMP-Dependent Protein Kinases, http://linkedlifedata.com/resource/pubmed/chemical/Dietary Fats, http://linkedlifedata.com/resource/pubmed/chemical/Enoyl-CoA Hydratase, http://linkedlifedata.com/resource/pubmed/chemical/Epinephrine, http://linkedlifedata.com/resource/pubmed/chemical/Fatty Acids, Nonesterified, http://linkedlifedata.com/resource/pubmed/chemical/Insulin, http://linkedlifedata.com/resource/pubmed/chemical/Ion Channels, http://linkedlifedata.com/resource/pubmed/chemical/Mitochondrial Proteins, http://linkedlifedata.com/resource/pubmed/chemical/Ppargc1a protein, rat, http://linkedlifedata.com/resource/pubmed/chemical/Protein-Serine-Threonine Kinases, http://linkedlifedata.com/resource/pubmed/chemical/RNA-Binding Proteins, http://linkedlifedata.com/resource/pubmed/chemical/Racemases and Epimerases, http://linkedlifedata.com/resource/pubmed/chemical/Receptors, Adrenergic, beta-2, http://linkedlifedata.com/resource/pubmed/chemical/Transcription Factors, http://linkedlifedata.com/resource/pubmed/chemical/Triglycerides, http://linkedlifedata.com/resource/pubmed/chemical/fatty acid oxidation complex, http://linkedlifedata.com/resource/pubmed/chemical/mitochondrial uncoupling protein 3, http://linkedlifedata.com/resource/pubmed/chemical/p38 Mitogen-Activated Protein..., http://linkedlifedata.com/resource/pubmed/chemical/pyruvate dehydrogenase...
pubmed:status
MEDLINE
pubmed:month
Feb
pubmed:issn
1522-1490
pubmed:author
pubmed:issnType
Electronic
pubmed:volume
300
pubmed:owner
NLM
pubmed:authorsComplete
Y
pubmed:pagination
R212-21
pubmed:dateRevised
2011-11-17
pubmed:meshHeading
pubmed-meshheading:21084676-3-Hydroxyacyl CoA Dehydrogenases, pubmed-meshheading:21084676-AMP-Activated Protein Kinases, pubmed-meshheading:21084676-Acetyl-CoA C-Acyltransferase, pubmed-meshheading:21084676-Acyl-CoA Dehydrogenase, pubmed-meshheading:21084676-Animals, pubmed-meshheading:21084676-Blood Glucose, pubmed-meshheading:21084676-Body Weight, pubmed-meshheading:21084676-Carbon-Carbon Double Bond Isomerases, pubmed-meshheading:21084676-Carnitine O-Palmitoyltransferase, pubmed-meshheading:21084676-Cyclic AMP-Dependent Protein Kinases, pubmed-meshheading:21084676-Dietary Fats, pubmed-meshheading:21084676-Enoyl-CoA Hydratase, pubmed-meshheading:21084676-Epinephrine, pubmed-meshheading:21084676-Fasting, pubmed-meshheading:21084676-Fatty Acids, Nonesterified, pubmed-meshheading:21084676-Gene Expression, pubmed-meshheading:21084676-Gene Expression Regulation, Enzymologic, pubmed-meshheading:21084676-Insulin, pubmed-meshheading:21084676-Ion Channels, pubmed-meshheading:21084676-Male, pubmed-meshheading:21084676-Mitochondria, Muscle, pubmed-meshheading:21084676-Mitochondrial Proteins, pubmed-meshheading:21084676-Muscle, Skeletal, pubmed-meshheading:21084676-Phosphorylation, pubmed-meshheading:21084676-Protein-Serine-Threonine Kinases, pubmed-meshheading:21084676-RNA-Binding Proteins, pubmed-meshheading:21084676-Racemases and Epimerases, pubmed-meshheading:21084676-Rats, pubmed-meshheading:21084676-Rats, Wistar, pubmed-meshheading:21084676-Receptors, Adrenergic, beta-2, pubmed-meshheading:21084676-Signal Transduction, pubmed-meshheading:21084676-Transcription Factors, pubmed-meshheading:21084676-Triglycerides, pubmed-meshheading:21084676-p38 Mitogen-Activated Protein Kinases
pubmed:year
2011
pubmed:articleTitle
Interactions between the consumption of a high-fat diet and fasting in the regulation of fatty acid oxidation enzyme gene expression: an evaluation of potential mechanisms.
pubmed:affiliation
Alberta Diabetes Institute, University of Alberta, Edmonton, Alberta, Canada.
pubmed:publicationType
Journal Article, Research Support, Non-U.S. Gov't