Search results for "Beta oxidation"

showing 10 items of 44 documents

Quantitative Acylcarnitine Profiling in Peripheral Blood Mononuclear Cells Using In Vitro Loading With Palmitic and 2-Oxoadipic Acids: Biochemical Co…

2005

Organic acid (OAD) and fatty acid oxidation disorders (FAOD) are inborn errors of metabolism often presenting with life-threatening metabolic decompensation followed by (irreversible) organ failure, and even death during catabolic state. Most of these diseases are considered as treatable, and metabolic decompensations can be avoided by early diagnosis and start of therapy. Confirmation of suspected diagnosis currently relies on enzymatic and mutation analyses and in vitro loading of palmitic acid in human skin fibroblast cultures. Furthermore, in some cases potentially life-threatening in vivo loading or fasting tests are still performed. In this study, we established a standardized in vitr…

MaleAdipatesPalmitic AcidPeripheral blood mononuclear cellMass SpectrometryMonocytesPalmitic acidBlood cellchemistry.chemical_compoundIn vivoCarnitinemedicineHumansChildBeta oxidationGlutaric aciduriaInfantMetabolismVenous bloodmedicine.anatomical_structurechemistryBiochemistryChild PreschoolPediatrics Perinatology and Child HealthFemaleMetabolism Inborn ErrorsPediatric Research
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Fatty acid oxidation and related gene expression in heart depleted of carnitine by mildronate treatment in the rat.

2004

The metabolic and genic effects induced by a 20-fold lowering of carnitine content in the heart were studied in mildronate-treated rats. In the perfused heart, the proportion of palmitate taken up then oxidized was 5-10% lower, while the triacylglycerol (TAG) formation was 100% greater than in controls. The treatment was shown to increase the maximal capacity of heart homogenates to oxidize palmitate, the mRNA level of carnitine palmitoyltransferase I (CPT-I) isoforms, the specific activity of CPT-I in subsarcolemmal mitochondria and the total carnitine content of isolated mitochondria. Concomitantly, the increased mRNA expression of lipoprotein lipase, fatty acid translocase and enzymes of…

MaleClinical BiochemistryPalmitic AcidBlood lipidsBiologyMitochondrionIn Vitro TechniquesMitochondria HeartOxygen ConsumptionCarnitinemedicineAnimalsCarnitineRNA MessengerRats WistarMolecular BiologyBeta oxidationHeart metabolismTriglycerideschemistry.chemical_classificationLipoprotein lipaseCarnitine O-PalmitoyltransferaseEsterificationMyocardiumFatty AcidsFatty acidBiological TransportCardiovascular AgentsCell BiologyGeneral MedicineRatsPerfusionLipoprotein LipasechemistryBiochemistryGene Expression RegulationCarnitine palmitoyltransferase IOxidation-Reductionmedicine.drugMethylhydrazinesMolecular and cellular biochemistry
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Characteristics of l-carnitine import into heart cells

2007

Abstract l -carnitine is an essential cofactor for the transport of fatty acids across the mitochondrial membranes. l -carnitine can be provided by food products or biosynthesized in the liver. After intestinal absorption or hepatic biosynthesis, l -carnitine is transferred to organs whose metabolism is dependent upon fatty acid oxidation, such as the skeletal muscle and the heart. The intracellular transport of l -carnitine into the cell requires specific transporters and today, several of these have been characterized. Most of them belong to the solute carrier family. Heart is one of the major target for carnitine transport and use, however basic properties of carnitine uptake by heart ce…

MaleSodiumSkeletal muscleGeneral MedicineMetabolismBiologyBiochemistryIntestinal absorptionRatsSolute carrier familyCarnitine transportmedicine.anatomical_structureBiochemistryCarnitinemedicineAnimalsMyocyteMyocytes CardiacCarnitineRats WistarBeta oxidationmedicine.drugBiochimie
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Effect of dietary n−3 and n−6 polyunsaturated fatty acids on lipid-metabolizing enzymes in obese rat liver

1994

This study was designed to examine whether n-3 and n-6 polyunsaturated fatty acids at a very low dietary level (about 0.2%) would alter liver activities in respect to fatty acid oxidation. Obese Zucker rats were used because of their low level of fatty acid oxidation, which would make increases easier to detect. Zucker rats were fed diets containing different oil mixtures (5%, w/w) with the same ratio of n-6/n-3 fatty acids supplied either as fish oil or arachidonic acid concentrate. Decreased hepatic triacylglycerol levels were observed only with the diet containing fish oil. In mitochondrial outer membranes, which support carnitine palmitoyltransferase I activity, cholesterol content was …

MaleUrate OxidaseMitochondria LiverBiochemistryMicechemistry.chemical_compoundDietary Fats UnsaturatedFatty Acids Omega-6Fatty Acids Omega-3AnimalsObesityFood scienceMonoamine OxidaseBeta oxidationchemistry.chemical_classificationCarnitine O-PalmitoyltransferasePalmitoyl Coenzyme ACholesterolOrganic ChemistryFatty acidCell BiologyPeroxisomeLipid MetabolismFish oilRatsRats ZuckerMalonyl Coenzyme AchemistryBiochemistryFatty Acids UnsaturatedMicrosomes LiverArachidonic acidCarnitine palmitoyltransferase ICarboxylic Ester HydrolasesSubcellular FractionsPolyunsaturated fatty acidLipids
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Thyroid hormone controls carnitine status through modifications of gamma-butyrobetaine hydroxylase activity and gene expression.

2002

The carnitine system plays a key role in beta-oxidation of long-chain fatty acids by permitting their transport into the mitochondrial matrix. The effects of hypothyroidism and hyperthyroidism were studied on gamma-butyrobetaine hydroxylase (BBH), the enzyme responsible for carnitine biosynthesis in the rat. In rat liver, BBH activity was decreased in the hypothyroid state and increased in hyperthyroid animals. The modifications in BBH activity correlated with changes in the enzyme Vmax values. These changes were shown to be related to hepatic BBH mRNA abundance. Thyroid hormones are known to interact with lipid metabolism, in particular by increasing long-chain fatty acid oxidation through…

Maleendocrine systemmedicine.medical_specialtyThyroid Hormonesendocrine system diseasesgamma-Butyrobetaine DioxygenaseThyroid GlandBiologyGene Expression Regulation EnzymologicMixed Function OxygenasesCellular and Molecular Neurosciencechemistry.chemical_compoundInternal medicineCarnitinemedicineAnimalsCarnitineRNA MessengerMolecular BiologyBeta oxidationPharmacologychemistry.chemical_classificationFatty acid metabolismThyroidFatty acidLipid metabolismCell BiologyRatsKineticsEndocrinologymedicine.anatomical_structurechemistryBiochemistryLiverOrgan SpecificityCarnitine biosynthesisMolecular Medicinemedicine.drugHormoneCellular and molecular life sciences : CMLS
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Long-chain 3-hydroxyacyl-CoA dehydrogenase deficiency: a severe fatty acid oxidation disorder

1994

3-Hydroxyacyl-CoA dehydrogenase deficiency is a newly recognised fatty acid oxidation disorder with a usually fatal outcome. We present a further patient who presented with hypoketotic hypoglycaemia, hepatopathy, secondary carnitine deficiency and increased plasma long-chain acylcarnitines. 3-Hydroxydicarboxylic aciduria was present and the diagnosis confirmed in cultured skin fibroblasts. Our patient is compared with those reported in the literature with respect to clinical symptoms, differential diagnosis and possible therapeutic regimens.

Malemedicine.medical_specialtyCardiomyopathyLipid Metabolism Inborn ErrorsFatal OutcomeInternal medicineCarnitineMedicineHumansBeta oxidationchemistry.chemical_classificationCultured skinbusiness.industryLiver DiseasesInfant Newborn3-Hydroxyacyl CoA DehydrogenasesMitochondrial MyopathiesClinical Enzyme Testsmedicine.diseaseDehydrogenase deficiencyHypoglycemiaEnzymeEndocrinologychemistrySecondary carnitine deficiencyPediatrics Perinatology and Child HealthDifferential diagnosisbusinessCardiomyopathiesLong-Chain-3-Hydroxyacyl-CoA DehydrogenaseEuropean journal of pediatrics
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Carnitine transport into muscular cells. inhibition of transport and cell growth by mildronate

2000

Carnitine is involved in the transfer of fatty acids across mitochondrial membranes. Carnitine is found in dairy and meat products, but is also biosynthesized from lysine and methionine via a process that, in rat, takes place essentially in the liver. After intestinal absorption or hepatic biosynthesis, carnitine is transferred to organs whose metabolism is dependent on fatty acid oxidation, such as heart and skeletal muscle. In skeletal muscle, carnitine concentration was found to be 50 times higher than in the plasma, implicating an active transport system for carnitine. In this study, we characterized this transport in isolated rat myotubes, established mouse C2C12 myoblastic cells, and …

Malemedicine.medical_specialtyIn Vitro TechniquesBiologyBiochemistryIntestinal absorptionCarnitine transportMicechemistry.chemical_compoundCarnitineInternal medicinemedicineAnimalsMyocyteCarnitineRats WistarMuscle SkeletalBeta oxidationCells CulturedPharmacologyMethionineCell MembraneSkeletal muscleBiological TransportMembrane transportRatsEndocrinologymedicine.anatomical_structureBiochemistrychemistryCell DivisionMethylhydrazinesmedicine.drugBiochemical Pharmacology
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Imeglimin Normalizes Glucose Tolerance and Insulin Sensitivity and Improves Mitochondrial Function in Liver of a High-Fat, High-Sucrose Diet Mice Mod…

2015

International audience; Imeglimin is the first in a new class of oral glucose-lowering agents currently in phase 2b development. Although imeglimin improves insulin sensitivity in humans, the molecular mechanisms are unknown. This study used a model of 16-week high-fat, high-sucrose diet (HFHSD) mice to characterize its antidiabetic effects. Six-week imeglimin treatment significantly decreased glycemia, restored normal glucose tolerance, and improved insulin sensitivity without modifying organs, body weights, and food intake. This was associated with an increase in insulin-stimulated protein kinase B phosphorylation in the liver and muscle. In liver mitochondria, imeglimin redirects substra…

Malemedicine.medical_specialtyMale Animals Mice Inbred C57BL Insulin Resistance/*physiology Diet High-Fat/adverse effects Hypoglycemic Agents/*therapeutic use Liver/*drug effects/*metabolism Mitochondria/*drug effects/*metabolism Triazines/*therapeutic useImegliminMitochondria/*drug effects/*metabolismEndocrinology Diabetes and Metabolism[SDV]Life Sciences [q-bio]High-Fat/adverse effectsBiologyMitochondrionDiet High-Fatmedicine.disease_causeInbred C57BLchemistry.chemical_compoundMiceLipid oxidationInternal medicineInternal MedicinemedicineHypoglycemic Agents/*therapeutic useHypoglycemic AgentsAnimalsProtein kinase BBeta oxidationComputingMilieux_MISCELLANEOUS2. Zero hungerchemistry.chemical_classificationReactive oxygen speciesTriazines/*therapeutic useTriazinesMitochondria3. Good healthDietMice Inbred C57BL[SDV] Life Sciences [q-bio]EndocrinologyLiver/*drug effects/*metabolismLiverchemistryInsulin Resistance/*physiologyCoenzyme Q – cytochrome c reductaseInsulin ResistanceOxidative stress
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Effect of endurance training on the capacity of red and white skeletal muscle of mouse to oxidize carboxyl-14C-labelled palmitate.

1977

Three groups of mice were trained for 1, 4 and 5 months according to different running programs on a motor driven treadmill and the fatty acid oxidation capacity (FAO) and the activities of some enzymes of energy metabolism (cytochrome c oxidase, malate dehydrogenase, triosephosphate dehydrogenase, and lactate dehydrogenase) were determined from m. quadriceps femoris (MQF). Endurance training increased the FAO [5-month training 4 days/week, 30 min/day 22% (p less than 0.05); 1-month training, 7 days/week, 150 min/day 37% (p less than 0.001); 4-month training, 5 days/week, 60 min/day 24% (p less than 0.05)]. The activities of cytochrome c oxidase and malate dehydrogenase increased approx. 30…

Malemedicine.medical_specialtyTime FactorsPhysiologyPhysical ExertionPalmitatesPalmitic AcidsBiologyMalate dehydrogenaseElectron Transport Complex IVchemistry.chemical_compoundMiceEndurance trainingMalate DehydrogenaseLactate dehydrogenaseInternal medicineOxidative enzymemedicineCytochrome c oxidaseAnimalsCarbon RadioisotopesBeta oxidationchemistry.chemical_classificationL-Lactate DehydrogenaseMusclesSkeletal muscleGlyceraldehyde-3-Phosphate DehydrogenasesEnzymeEndocrinologymedicine.anatomical_structurechemistrybiology.proteinOxidation-ReductionActa physiologica Scandinavica
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Regulation of lipid flux between liver and adipose tissue during transient hepatic steatosis in carnitine-depleted rats

2007

Rats with carnitine deficiency due to trimethylhydrazinium propionate (mildronate) administered at 80 mg/100 g body weight per day for 10 days developed liver steatosis only upon fasting. This study aimed to determine whether the transient steatosis resulted from triglyceride accumulation due to the amount of fatty acids preserved through impaired fatty acid oxidation and/or from up-regulation of lipid exchange between liver and adipose tissue. In liver, mildronate decreased the carnitine content by approximately 13-fold and, in fasted rats, lowered the palmitate oxidation rate by 50% in the perfused organ, increased 9-fold the triglyceride content, and doubled the hepatic very low density …

Malemedicine.medical_specialtyVery low-density lipoproteintissu adipeuxAdipose tissuerattus rattusBiochemistry03 medical and health scienceschemistry.chemical_compound0302 clinical medicinestéatose hépatiqueCarnitineInternal medicinemedicineAnimalsLipolysisCarnitineRats Wistarpathologie animaleMolecular BiologyBeta oxidationlipide030304 developmental biologychemistry.chemical_classification0303 health sciencesTriglycerideFatty AcidsFatty acidCell Biologyfoiemedicine.diseaseLipidsRats[SDV.BBM.BC]Life Sciences [q-bio]/Biochemistry Molecular Biology/Biomolecules [q-bio.BM]Fatty LiverLipoproteins LDLLipoprotein LipaseEndocrinologyAdipose TissueGene Expression RegulationLiverchemistryHepatocytesRATSteatosisTriolein030217 neurology & neurosurgerymedicine.drug
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