0000000000020920

AUTHOR

Rodolphe Filomenko

showing 7 related works from this author

Liver X Receptor Regulates Arachidonic Acid Distribution and Eicosanoid Release in Human Macrophages

2013

Objective— Liver X receptors (LXRs) are oxysterol-activated nuclear receptors that are highly expressed in macrophages and regulate lipid homeostasis and inflammation. Among putative LXR target genes, lysophosphatidylcholine acyltransferase 3 (LPCAT3) involved in the Lands cycle controls the fatty acid composition at the sn-2 position of glycerophospholipids and, therefore, the availability of fatty acids, such as arachidonic acid (AA), used for eicosanoid synthesis. The aim of our study was to determine whether LXRs could regulate the Lands cycle in human macrophages, to assess the consequences in terms of lipid composition and inflammatory response, and to work out the relative contribut…

InflammationBiologySensitivity and SpecificityDinoprostoneMonocyteschemistry.chemical_compoundDownregulation and upregulationmedicineHumansDimethyl SulfoxideRNA MessengerLiver X receptorReceptorCells CulturedLiver X ReceptorsInflammationArachidonic AcidMacrophagesLysophospholipid acyltransferase activity1-Acylglycerophosphocholine O-AcyltransferaseMicroarray AnalysisOrphan Nuclear ReceptorsUp-RegulationchemistryEicosanoidNuclear receptorBiochemistryEicosanoidslipids (amino acids peptides and proteins)Arachidonic acidmedicine.symptomCardiology and Cardiovascular MedicineArteriosclerosis, Thrombosis, and Vascular Biology
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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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Identification of biological markers of liver X receptor (LXR) activation at the cell surface of human monocytes.

2012

Background Liver X receptor (LXR) α and LXR β (NR1H3 and NR1H2) are oxysterol-activated nuclear receptors involved in the control of major metabolic pathways such as cholesterol homeostasis, lipogenesis, inflammation and innate immunity. Synthetic LXR agonists are currently under development and could find applications in various fields such as cardiovascular diseases, cancer, diabetes and neurodegenerative diseases. The clinical development of LXR agonists requires the identification of biological markers for pharmacodynamic studies. In this context, monocytes represent an attractive target to monitor LXR activation. They are easily accessible cells present in peripheral blood; they expres…

Hydrocarbons FluorinatedCD226Celllcsh:MedicineBiochemistryMonocytesDrug DiscoveryMolecular Cell Biologypolycyclic compoundsSignaling in Cellular Processeslcsh:ScienceLiver X ReceptorsSulfonamidesMultidisciplinarymedicine.diagnostic_testfood and beveragesCell DifferentiationOrphan Nuclear ReceptorsFlow CytometryNuclear SignalingCholesterolmedicine.anatomical_structureGene Knockdown Techniqueslipids (amino acids peptides and proteins)Research ArticleSignal TransductionAgonistmedicine.drug_classImmune CellsImmunologyContext (language use)Biologydigestive systemFlow cytometryAntigens CDDNA-binding proteinsmedicineHumansRNA MessengerLiver X receptorBiologyCluster of differentiationMacrophagesCell Membranelcsh:RProteinsLipid MetabolismMetabolismGene Expression RegulationNuclear receptorImmunologyCancer researchlcsh:QBiomarkersCytometryFoam CellsDevelopmental BiologyPLoS ONE
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Knock-down of the oxysterol receptor LXRα impairs cholesterol efflux in human primary macrophages: lack of compensation by LXRβ activation.

2012

Liver X Receptors (LXRs) α and β are oxysterol-activated nuclear receptors involved in the control of lipid metabolism and inflammation. Pharmacological activation of LXR is promising in the treatment of atherosclerosis since it can promote cholesterol efflux from macrophages and prevent foam cell formation. However, the development of LXR agonists has been limited by undesirable side-effects such as hepatic steatosis mediated by LXRα activation. Therefore, it has been proposed that targeting LXRα activators to extrahepatic tissues or using LXRβ-specific activators could be used as alternative strategies. It is not clear whether these molecules will retain the full atheroprotective potentia…

Apolipoprotein Emedicine.medical_specialtyBenzylaminesOxysterolHydrocarbons FluorinatedPrimary Cell CultureBiochemistryBenzoatesApolipoproteins EInternal medicinemedicineHumansRNA Small InterferingReceptorLiver X receptorCells CulturedFoam cellLiver X ReceptorsPharmacologySulfonamidesbiologyApolipoprotein A-IMacrophagesOrphan Nuclear ReceptorsLipoproteins HDL2Cell biologyEndocrinologyCholesterolABCG1Nuclear receptorABCA1Gene Knockdown Techniquesbiology.proteinlipids (amino acids peptides and proteins)Biochemical pharmacology
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Caspase-8 prevents sustained activation of NF-kappaB in monocytes undergoing macrophagic differentiation.

2006

Abstract Caspases have demonstrated several nonapoptotic functions including a role in the differentiation of specific cell types. Here, we show that caspase-8 is the upstream enzyme in the proteolytic caspase cascade whose activation is required for the differentiation of peripheral-blood monocytes into macrophages. On macrophage colony-stimulating factor (M-CSF) exposure, caspase-8 associates with the adaptor protein Fas-associated death domain (FADD), the serine/threonine kinase receptor-interacting protein 1 (RIP1) and the long isoform of FLICE-inhibitory protein FLIP. Overexpression of FADD accelerates the differentiation process that does not involve any death receptor. Active caspase…

Macrophage colony-stimulating factorCellular differentiationFas-Associated Death Domain ProteinImmunologyCaspase 8BiochemistryMonocytesArticle03 medical and health sciences0302 clinical medicineCell Line TumormedicineHumansFADDCaspase030304 developmental biologyDeath domain0303 health sciencesCaspase 8biologyMonocyteMacrophage Colony-Stimulating FactorMacrophagesNF-kappa BSignal transducing adaptor proteinRNA-Binding ProteinsCell DifferentiationCell BiologyHematologyMolecular biologyNuclear Pore Complex Proteinsmedicine.anatomical_structure030220 oncology & carcinogenesisbiology.proteinBlood
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cIAP1-dependent TRAF2 degradation regulates the differentiation of monocytes into macrophages and their response to CD40 ligand.

2008

AbstractPeripheral blood monocytes are plastic cells that migrate to tissues and differentiate into various cell types, including macrophages, dendritic cells, and osteoclasts. We have described the migration of cellular inhibitor of apoptosis protein 1 (cIAP1), a member of the IAP family of proteins, from the nucleus to the Golgi apparatus in monocytes undergoing differentiation into macrophages. Here we show that, once in the cytoplasm, cIAP1 is involved in the degradation of the adaptor protein tumor necrosis factor receptor–associated factor 2 (TRAF2) by the proteosomal machinery. Inhibition of cIAP1 prevents the decrease in TRAF2 expression that characterizes macrophage formation. We d…

TRAF2CytoplasmCellular differentiationImmunologyCD40 LigandDown-RegulationGene ExpressionGolgi ApparatusBiologyBiochemistryMonocytesProinflammatory cytokineInhibitor of Apoptosis ProteinsPhagocytes Granulocytes and MyelopoiesisPhagocytosisMacrophageHumansRNA Small InterferingCD40U937 cellMacrophagesSignal transducing adaptor proteinCell DifferentiationCell BiologyHematologyU937 CellsTNF Receptor-Associated Factor 2Molecular biologyCell biologybiology.proteinTumor necrosis factor alphaBlood
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Docosahexaenoic Acid Induces Increases in [Ca2+]ivia Inositol 1,4,5-Triphosphate Production and Activates Protein Kinase Cγ and -δ via Phosphatidylse…

2007

We investigated, in monocytic leukemia U937 cells, the effects of docosahexaenoic acid (DHA; 22:6 n-3) on calcium signaling and determined the implication of phospholipase C (PLC) and protein kinase C (PKC) in this pathway. DHA induced dose-dependent increases in [Ca2+]i, which were contributed by intracellular pool, via the production of inositol-1,4,5-triphosphate (IP3) and store-operated Ca2+ (SOC) influx, via opening of Ca2+ release-activated Ca2+ (CRAC) channels. Chemical inhibition of PLC, PKCgamma, and PKCdelta, but not of PKCbeta I/II, PKCalpha, or PKCbetaI, significantly diminished DHA-induced increases in [Ca2+]i. In vitro PKC assays revealed that DHA induced a approximately 2-fol…

Intracellular FluidDocosahexaenoic AcidsApoptosisInositol 145-TrisphosphatePhosphatidylserinesBiologyEnzyme activatorchemistry.chemical_compoundHumansCalcium SignalingPhosphatidylserine bindingProtein Kinase CProtein kinase CCalcium signalingPharmacologyBinding SitesPhospholipase CU937 CellsPhosphatidylserineMolecular biologyCell biologyEnzyme ActivationProtein Kinase C-deltachemistryDocosahexaenoic acidApoptosisMolecular Medicinelipids (amino acids peptides and proteins)Molecular Pharmacology
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