Search results for "Cholesterol"

showing 10 items of 1211 documents

Biochemical hepatic alterations and body lipid composition in the herbivorous grass carp (Ctenopharyngodon idella) fed high-fat diets.

2006

High-fat diets may have favourable effects on growth of some carnivorous fish because of the protein-sparing effect of lipids, but high-fat diets also exert some negative impacts on flesh quality. The goal of the study was therefore to determine the effects of fat-enriched diets in juvenile grass carp (Ctenopharyngodon idella) as a typical herbivorous fish on growth and possible lipid metabolism alterations. Three isonitrogenous diets containing 2, 6 or 10% of a mixture of lard, maize oil and fish oil (1:1:1, by weight) were applied to fish for 8 weeks in a recirculation system. Data show that feeding diets with increasing lipid levels resulted in lowered feed intake, decreased growth and f…

CarpsDietary lipidFisheriesMedicine (miscellaneous)BiologyFeed conversion ratioLipid peroxidationchemistry.chemical_compoundAnimalsFood scienceBeta oxidationTriglycerideschemistry.chemical_classificationNutrition and DieteticsFatty AcidsLipid metabolismbiology.organism_classificationFish oilDietary FatsLipidsGrass carpDietCholesterolBiochemistrychemistryLiverBody CompositionAnimal Nutritional Physiological PhenomenaLipid PeroxidationPolyunsaturated fatty acidThe British journal of nutrition
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Reversible stress-induced lipid body formation in fast twitch rat myofibers

2012

We analyzed the existence of lipid bodies (LBs) in the fast twitch rat flexor digitorum brevis (FDB) myofibers and found that these structures were scarce. However, isolation procedure of the myofibers, heath shock, viral infection or the glycosylation inhibitor tunicamycin induced formation of the LBs, which were stationary structures flanking Z lines. We next infected FDB myofibers with recombinant Semliki Forest virus expressing caveolin 3-yellow fluorescent protein (cav3-YFP) since this chimeric protein was targeted to the LBs facilitating their further analysis. Photobleaching experiments showed that the LBs recovered cav 3-YFP extremely slowly, indicating that they were not continuous…

Caveolin 3Blotting WesternGolgi ApparatusBiologyEndoplasmic ReticulumSemliki Forest virusRats Sprague-Dawleychemistry.chemical_compoundSarcolemmaBacterial ProteinsAnimalsCells CulturedSarcolemmaLipogenesisEndoplasmic reticulumCell BiologyTunicamycinBrefeldin AEndoplasmic Reticulum StressLipid Metabolismmusculoskeletal systembiology.organism_classificationFusion proteinRatsCell biologyCaveolin 3Luminescent ProteinsProtein TransportSarcoplasmic ReticulumCholesterolBiochemistrychemistryMuscle Fibers Fast-TwitchVirusesUnfolded protein responseFemaleExperimental Cell Research
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Sphingomyelin inhibition of Ciona intestinalis (Tunicata) cytotoxic hemocytes assayed against sheep erythrocytes

1995

Hemocytes from the ascidian, Ciona intestinalis, are capable of lysing erythrocytes in vitro following cell membrane contact. With the aim of examining the mechanism of cytotoxicity, we performed inhibition experiments with lipid components of erythrocyte membranes. Cholesterol is not an inhibitor, whereas, among the phospholipids tested, (sphingomyelin, phosphatidylcholine, phosphatidylserine, phosphatidylethanolamine) sphingomyelin inhibits the hemolytic activity of hemocytes. However, thin layer chromatography showed that sphingomyelinase activity was not contained in the chloroform-methanol extracts from hemocyte debris. The inhibition capacity of the components ceramide and phosphorylc…

Cell ExtractsHemocytesCiona intestinaliCytotoxicityHemocyteTunicate;Cell membraneHemolysin Proteinschemistry.chemical_compoundSphingomyelin inhibition;InvertebratePhospholipidsCiona intestinalis;biologyInvertebrate;PhosphatidylserineCiona intestinalisSphingomyelinsCytotoxicity;Sheep erythrocytesCholesterolSphingomyelin Phosphodiesterasemedicine.anatomical_structureBiochemistrylipids (amino acids peptides and proteins)SphingomyelinHemolysis inhibitionSphingomyelin inhibitionCeramideHemolysis inhibition;ImmunologyTunicateHemolysisMembrane LipidsPhosphatidylcholinemedicineAnimalsCiona intestinalisPhosphatidylethanolamineSheepPhosphorylcholineCell MembraneOsmolar ConcentrationCytotoxicity Tests Immunologicbiology.organism_classificationCulture MediaHemocytes;chemistryChromatography Thin LayerDevelopmental Biology
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Assembly mechanism of the oligomeric streptolysin O pore: the early membrane lesion is lined by a free edge of the lipid membrane and is extended gra…

1998

Streptolysin O (SLO) is a bacterial exotoxin that binds to cell membranes containing cholesterol and then oligomerizes to form large pores. Along with rings, arc-shaped oligomers form on membranes. It has been suggested that each arc represents an incompletely assembled oligomer and constitutes a functional pore, faced on the opposite side by a free edge of the lipid membrane. We sought functional evidence in support of this idea by using an oligomerization-deficient, non-lytic mutant of SLO. This protein, which was created by chemical modification of a single mutant cysteine (T250C) with N-(iodoacetaminoethyl)-1-naphthylamine-5-sulfonic acid, formed hybrid oligomers with active SLO on memb…

Cell Membrane PermeabilityProtein ConformationMembrane lipidsBiologyCholesterol-dependent cytolysinComplement Hemolytic Activity AssayOligomerGeneral Biochemistry Genetics and Molecular BiologyMembrane Lipidschemistry.chemical_compoundBacterial ProteinsNaphthalenesulfonatesAnimalsProtein oligomerizationCysteineLipid bilayerMolecular BiologyGeneral Immunology and MicrobiologyGeneral NeuroscienceErythrocyte MembraneCalceinMembranechemistryBiochemistryMutationStreptolysinsBiophysicsStreptolysinRabbitsResearch ArticleThe EMBO Journal
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Differential interaction of the two cholesterol-dependent, membrane-damaging toxins, streptolysin O and Vibrio cholerae cytolysin, with enantiomeric …

2003

AbstractMembrane cholesterol is essential to the activity of at least two structurally unrelated families of bacterial pore-forming toxins, represented by streptolysin O (SLO) and Vibrio cholerae cytolysin (VCC), respectively. Here, we report that SLO and VCC differ sharply in their interaction with liposome membranes containing enantiomeric cholesterol (ent-cholesterol). VCC had very low activity with ent-cholesterol, which is in line with a stereospecific mode of interaction of this toxin with cholesterol. In contrast, SLO was only slightly less active with ent-cholesterol than with cholesterol, suggesting a rather limited degree of structural specificity in the toxin–cholesterol interact…

Cell Membrane Permeabilitygenetic structuresBiophysicsBiologymedicine.disease_causeBiochemistrySubstrate Specificity03 medical and health scienceschemistry.chemical_compoundBacterial ProteinsStructural Biologyotorhinolaryngologic diseasesGeneticsmedicineStreptolysin OMolecular BiologyVibrio cholerae030304 developmental biology0303 health sciencesLiposomeVibrio cholerae cytolysinCholesterolToxinCytotoxinsEnantiomeric cholesterol030302 biochemistry & molecular biologyMembranes ArtificialStereoisomerismCell BiologyFluoresceinseye diseasesRecombinant ProteinsCholesterol-binding cytolysinsMembraneCholesterolchemistryBiochemistryVibrio choleraeLiposomesStreptolysinsProtein–cholesterol interactionlipids (amino acids peptides and proteins)Streptolysinsense organsCytolysinEnantiomerProtein BindingFEBS letters
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Oxysterols: Influence on plasma membrane rafts microdomains and development of ocular diseases

2015

Oxidation of cholesterol into oxysterols is a major way of elimination of cholesterol from the liver and extrahepatic tissues, including the brain and the retina. Oxysterols are involved in various cellular processes. Numerous links have been established between oxysterols and several disorders such as neurodegenerative pathologies, retinopathies and atherosclerosis. Different components of the lipid layer such as sphingolipids, sterols and proteins participate to membrane fluidity and forme lipid rafts microdomains. Few data are available on the links between lipids rafts and oxysterols. The purpose of this review is to suggest the potential role of lipid rafts microdomains in the developm…

Cell type[SDV.BIO]Life Sciences [q-bio]/BiotechnologyEye DiseasesOxysterol[ SDV.AEN ] Life Sciences [q-bio]/Food and NutritionClinical BiochemistryModels BiologicalBiochemistrychemistry.chemical_compoundMembrane MicrodomainsEndocrinologyretinopathyMembrane fluiditypolycyclic compoundsAnimalsHumanscyp46a1[SDV.MHEP.OS]Life Sciences [q-bio]/Human health and pathology/Sensory OrgansLipid bilayerMolecular BiologyLipid raftPharmacologylipid raftsCholesterolOrganic Chemistry[ SDV.BIO ] Life Sciences [q-bio]/BiotechnologycholesterolSphingolipidCell biologySterolsMembranechemistryBiochemistry[ SDV.MHEP.OS ] Life Sciences [q-bio]/Human health and pathology/Sensory Organsoxysterolslipids (amino acids peptides and proteins)[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition
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Involvement of Kv3.1 potassium chanels in 7-ketocholesterol, 24S-hydroxycholesterol and C24 : 0-induced lipotoxicity on 158N and BV-2 cells : relatio…

2017

Potassium (K+) is involved in the regulation of cellular excitability, cell cycle regulation, cell viability, neuroprotection and maintenance of microglial and oligodendrocytic functions. Potassium dysfunction, described in several neurodegenerative diseases such as Alzheimer's Disease (AD), multiple sclerosis (MS), Parkinson's disease and Huntington's disease, may be a potential therapeutic target. The underlying toxic mechanisms of these neurodegenerative pathologies involve oxysterols, which are oxidized cholesterol derivatives, and fatty acids including those associated with peroxisomal metabolism. 7-ketocholesterol (7KC), 24S-hydroxycholesterol (24S-OHC) and tetracosanoic acid (C24:0),…

Cellules microgliales murines BV-2Oligodengrocytes murins 158N158N murine oligodendrocytesCanaux KvKv3.1b7-cétocholestérolNeurodégénérescenceMaladie d’Alzheimer24S-hydroxycholesterolTetracosanoic acid (C24:0)24S-hydroxycholestérolPotassium[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologyAcide tétracosanoïque (C24:0)NeurodegenerationMurine microglial BV-2 cellsAlzheimer’s disease7-ketocholesterolKv channels
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Improved synthesis and in vitro evaluation of the cytotoxic profile of oxysterols oxidized at C4 (4α- and 4β-hydroxycholesterol) and C7 (7-ketocholes…

2013

Whereas the biological activities of oxysterols oxidized at C7 (7-ketocholesterol (7KC), 7β-hydroxycholesterol (7β-OHC), 7α-hydroxycholesterol (7α-OHC)) are well documented, those of oxysterols oxidized at C4 (4β-hydroxycholesterol (4β-OHC), 4α-hydroxycholesterol (4α-OHC)) are not well known, especially on the cells of the central nervous system. Therefore, an improved methodology has been validated for 4β-OHC and 4α-OHC synthesis, and the effects on cell viability and cell growth of these molecules were studied on immortalized, tumoral and normal brain cells (158N, C6 and SK-N-BE cells, and mixed primary cultures of astrocytes and oligodendrocytes). Whereas inhibition of cell growth with 7…

Central Nervous SystemCell SurvivalCentral nervous systemMolecular ConformationCell LineStructure-Activity RelationshipDrug Discoverypolycyclic compoundsmedicineHumansCytotoxic T cellViability assayKetocholesterolsCell ProliferationPharmacologyDose-Response Relationship DrugChemistryCell growthOrganic ChemistryGeneral MedicineHydroxycholesterolsIn vitroSterolsOn cellsmedicine.anatomical_structureBiochemistryToxicitylipids (amino acids peptides and proteins)sense organs4β hydroxycholesterolOxidation-ReductionEuropean Journal of Medicinal Chemistry
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Neurosteroidogenesis in Rat Retinas

2002

Neurosteroids (steroids synthesized in the CNS) function by modulating neurotransmission. To establish an experimental model for investigation of neurosteroid synthesis and regulation, independent of blood-borne steroids, we examined the steroidogenic activity of isolated rat retinas. We identified progesterone, pregnenolone, dehydroepiandrosterone, desoxycorticosterone, 3 alpha,5 alpha-tetrahydrodesoxycorticosterone, 3 alpha-hydroxy-5 alpha-dihydroprogesterone, 17-hydroxyprogesterone, and 17-hydroxypregnenolone together with their esterified forms. As pregnenolone is the precursor of all steroids, its formation was studied in detail as an index of a steroid-synthesizing tissue. Pregnenolon…

Central Nervous SystemMaleTime FactorsNeuroactive steroidDehydroepiandrosteroneBiochemistryGas Chromatography-Mass SpectrometryRetinaCellular and Molecular NeuroscienceCyclic AMPmedicineAnimalsCholesterol Side-Chain Cleavage EnzymeLovastatinRats WistarChromatography High Pressure LiquidProgesteroneNeurotransmitter AgentsDose-Response Relationship DrugbiologyCholesterol side-chain cleavage enzymeCytochrome P450DehydroepiandrosteroneAminoglutethimideImmunohistochemistryRatsmedicine.anatomical_structureBiochemistryPregnenoloneInner nuclear layerPregnenolonebiology.proteinSteroidsLovastatinAminoglutethimidemedicine.drugJournal of Neurochemistry
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Bidirectional Control between Cholesterol Shuttle and Purine Signal at the Central Nervous System.

2022

Recent studies have highlighted the mechanisms controlling the formation of cerebral cholesterol, which is synthesized in situ primarily by astrocytes, where it is loaded onto apolipoproteins and delivered to neurons and oligodendrocytes through interactions with specific lipoprotein receptors. The “cholesterol shuttle” is influenced by numerous proteins or carbohydrates, which mainly modulate the lipoprotein receptor activity, function and signaling. These molecules, provided with enzymatic/proteolytic activity leading to the formation of peptide fragments of different sizes and specific sequences, could be also responsible for machinery malfunctions, which are associated with neurological…

Central Nervous SystemNeuronsNiemann-Pick DiseasesOrganic ChemistryReceptors PurinergicLDL receptorLDL receptors; cholesterol; purinergic receptors; Cholesterol; Humans; Neurons; Purines; Receptors Purinergic; Central Nervous System; Niemann-Pick DiseasesPurinergicGeneral MedicineRECEPTORESCatalysisComputer Science ApplicationsInorganic ChemistryCholesterolPurinespurinergic receptorsReceptorsLDL receptorsHumansPhysical and Theoretical ChemistryMolecular BiologySpectroscopyInternational journal of molecular sciences
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