Search results for "RODO"

showing 10 items of 520 documents

Agkistrodon ameliorates pain response and prevents cartilage degradation in monosodium iodoacetate-induced osteoarthritic rats by inhibiting chondroc…

2019

Abstract Ethnopharmacological relevance Osteoarthritis (OA), characterized by joint pain and cartilage degradation, is the most common form of joint disease worldwide but with no satisfactory therapy available. The ethanol extract of Agkistrodon acutus (EAA) has been widely used as a traditional Chinese medicine (TCM) for the treatment of arthralgia and inflammatory diseases, but there is no report regarding its efficacy on OA to date. Here, we determined the effects of EAA on the pain behavior and cartilage degradation in vivo and clarified its target genes and proteins associated with chondrocyte hypertrophy and apoptosis in vitro. Materials and methods In vivo OA model was established by…

Cartilage ArticularMalePainChondrocyte hypertrophyApoptosisOsteoarthritisPharmacologyComplex MixturesChondrocyteRats Sprague-Dawley03 medical and health sciencesAnimal data0302 clinical medicineChondrocytesIn vivoDrug DiscoveryOsteoarthritismedicineAnimalsViability assay030304 developmental biologyPharmacology0303 health sciencesAnalgesicsChemistryCartilageHypertrophymedicine.diseaseIodoacetic Acidmedicine.anatomical_structureApoptosis030220 oncology & carcinogenesisAgkistrodonJournal of ethnopharmacology
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Protein targeting to the plasma membrane of adult skeletal muscle fiber: an organized mosaic of functional domains.

2001

The plasma membrane of differentiated skeletal muscle fibers comprises the sarcolemma, the transverse (T) tubule network, and the neuromuscular and muscle-tendon junctions. We analyzed the organization of these domains in relation to defined surface markers, beta-dystroglycan, dystrophin, and caveolin-3. These markers were shown to exhibit highly organized arrays along the length of the fiber. Caveolin-3 and beta-dystroglycan/dystrophin showed distinct, but to some extent overlapping, labeling patterns and both markers left transverse tubule openings clear. This labeling pattern revealed microdomains over the entire plasma membrane with the exception of the neuromuscular and muscle-tendon j…

Caveolin 3Muscle Fibers SkeletalNeuromuscular JunctionMuscle ProteinsProtein Sorting Signalsmedicine.disease_causeCaveolinsT-tubuleDystrophinMiceMembrane MicrodomainsViral Envelope ProteinsProtein targetingmedicineMyocyteAnimalsDystroglycansMuscle SkeletalGlycoproteinsSarcolemmaMembrane GlycoproteinsbiologyCell MembraneSkeletal muscleCell BiologyMolecular biologyTransport proteinCell biologyRatsCytoskeletal ProteinsProtein Transportmedicine.anatomical_structureTubulebiology.proteinFemaleDystrophinExperimental cell research
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The Odyssey of Hsp60 from Tumor Cells to Other Destinations Includes Plasma Membrane-Associated Stages and Golgi and Exosomal Protein-Trafficking Mod…

2012

BACKGROUND: In a previous work we showed for the first time that human tumor cells secrete Hsp60 via exosomes, which are considered immunologically active microvesicles involved in tumor progression. This finding raised questions concerning the route followed by Hsp60 to reach the exosomes, its location in them, and whether Hsp60 can be secreted also via other mechanisms, e.g., by the Golgi. We addressed these issues in the work presented here. PRINCIPAL FINDINGS: We found that Hsp60 localizes in the tumor cell plasma membrane, is associated with lipid rafts, and ends up in the exosomal membrane. We also found evidence that Hsp60 localizes in the Golgi apparatus and its secretion is prevent…

Cell Physiologyanimal structuresAnatomy and PhysiologyHistologylcsh:MedicineGolgi ApparatusBiologyExosomesBiochemistrysymbols.namesakeCytosolMembrane MicrodomainsDiagnostic MedicineCell Line TumorOrganelleMolecular Cell BiologyPathologyHumansSecretionlcsh:ScienceLipid raftBiologyhsp60 exosomeOrganellesMultidisciplinarylcsh:RfungiChaperonin 60Golgi apparatusMicrovesiclesCellular StructuresTransport proteinCell biologyProtein TransportMembrane proteinSubcellular OrganellesTumor progressionsymbolsCytochemistryMedicinelcsh:QMembranes and SortingExtracellular SpaceBiomarkersResearch ArticleGeneral PathologyPLoS ONE
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Vitamin E transport, membrane incorporation and cell metabolism: Is α-tocopherol in lipid rafts an oar in the lifeboat?

2010

International audience; Vitamin E is composed of closely related compounds, including tocopherols and tocotrienols. Studies of the last decade provide strong support for a specific role of alpha-tocopherol in cell signalling and the regulation of gene expression. It produces significant effects on inflammation, cell proliferation and apoptosis that are not shared by other vitamin E isomers with similar antioxidant properties. The different behaviours of vitamin E isomers might relate, at least in part, to the specific effects they exert at the plasma membrane. alpha-Tocopherol is not randomly distributed throughout the phospholipid bilayer of biological membranes, and as compared with other…

Cell deathAntioxidant[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutrition[SDV]Life Sciences [q-bio]medicine.medical_treatmentalpha-TocopherolSignal transductionBiologyAntioxidants03 medical and health scienceschemistry.chemical_compoundMembrane Microdomains0302 clinical medicineATP Binding Cassette Transporter Subfamily B Member 3medicineHumansVitamin ETocopherolATP Binding Cassette Transporter Subfamily B Member 2Protein PrecursorsLipid bilayerLipid raftLDL-Receptor Related Proteins030304 developmental biology0303 health sciencesTocopherolVitamin ECell MembraneBiological TransportBiological membraneLipid metabolismPeptide FragmentsCell biology[SDV] Life Sciences [q-bio]Lipid raftIntestinal AbsorptionLiverReceptors LDLBiochemistrychemistryATP-Binding Cassette Transporterslipids (amino acids peptides and proteins)Antioxidantalpha-Tocopherol[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgeryFood ScienceBiotechnologyMolecular Nutrition & Food Research
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Oxidative stress resistance in hippocampal cells is associated with altered membrane fluidity and enhanced nonamyloidogenic cleavage of endogenous am…

2010

Reactive oxygen species (ROS) have important roles as signaling molecules in the regulation of a variety of biological processes. On the other hand, chronic oxidative stress exerted by ROS is widely considered a causative factor in aging. Therefore, cells need to be able to adapt to a chronic oxidative challenge and do so to a certain cell-type-specific extent. Recently, we have shown in oxidative-stress-resistant cell lines, HT22(H2O2) and HT22(Glu), derived from the neuronal cell line HT22 by chronic exposure to sublethal concentrations of H(2)O(2) and glutamate, that, in addition to the known antioxidant defense mechanisms, e.g., activation of antioxidant enzymes or up-regulation of heat…

Cell signalingMembrane FluidityBlotting WesternOxidative phosphorylationmedicine.disease_causeHippocampusBiochemistryNeuroprotectionCell LineAmyloid beta-Protein PrecursorMembrane MicrodomainsPhysiology (medical)Membrane fluidityAmyloid precursor proteinmedicineHumansCellular SenescenceNeuronschemistry.chemical_classificationReactive oxygen speciesbiologyChemistryCell MembraneMembrane ProteinsCell biologyOxidative Stressbiology.proteinSphingomyelinOxidative stressFree Radical Biology and Medicine
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Quantitative characterization of tetraspanin 8 homointeractions in the plasma membrane

2021

The spatial distribution of proteins in cell membranes is crucial for signal transduction, cell communication and membrane trafficking. Members of the Tetraspanin family organize functional protein clusters within the plasma membrane into so-called Tetraspanin-enriched microdomains (TEMs). Direct interactions between Tetraspanins are believed to be important for this organization. However, studies thus far have utilized mainly co-immunoprecipitation methods that cannot distinguish between direct and indirect, through common partners, interactions. Here we study Tetraspanin 8 homointeractions in living cells via quantitative fluorescence microscopy. We demonstrate that Tetraspanin 8 exists i…

Cell signalingTetraspaninsLipoylationDimerTransfectionBiochemistryArticleProtein–protein interactionchemistry.chemical_compoundMembrane MicrodomainsTetraspaninFluorescence Resonance Energy TransferHumansMolecular BiologyChemistryCell BiologyDissociation constantHEK293 CellsMembraneMicroscopy FluorescenceMembrane proteinembryonic structuresBiophysicsThermodynamicsProtein MultimerizationSignal transductionSignal TransductionBiochemical Journal
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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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Caveolin and GLT-1 gene expression is reciprocally regulated in primary astrocytes: Association of GLT-1 with non-caveolar lipid rafts

2004

Caveolae represent membrane microdomains acting as integrators of cellular signaling and functional processes. Caveolins are involved in the biogenesis of caveolae and regulate the activity of caveolae-associated proteins. Although caveolin proteins are found in the CNS, the regulation of caveolins in neural cells is poorly described. In the present study, we investigated different modes and mechanisms of caveolin gene regulation in primary rat astrocytes. We demonstrated that activation of cAMP-dependent signaling pathways led to a marked reduction in protein levels of caveolin-1/-2 in cortical astrocytes. Application of transforming growth factor-alpha (TGF-alpha) also resulted in a decre…

Central Nervous SystemCaveolin 2Caveolin 1Down-RegulationGlutamic AcidBiologyCaveolinsHistone DeacetylasesChromatin remodelingRats Sprague-DawleyPhosphatidylinositol 3-KinasesCellular and Molecular NeuroscienceAstrocyte differentiationMembrane MicrodomainsCaveolaeCaveolinCyclic AMPAnimalsRNA MessengerLipid raftCerebral CortexRegulation of gene expressionTransforming Growth Factor alphaRatsCell biologyCaveolin 2Animals NewbornExcitatory Amino Acid Transporter 2Gene Expression RegulationNeurologyAstrocytesCaveolin 1Signal TransductionGlia
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Differential Promotion of Glutamate Transporter Expression and Function by Glucocorticoids in Astrocytes from Various Brain Regions

2005

Steroids that activate glucocorticoid receptors (GRs) and mineralocorticoid receptors have important regulatory effects on neural development, plasticity, and the body's stress response. Here, we investigated the role of corticosteroids in regulating the expression of the glial glutamate transporters glial glutamate transporter-1 (GLT-1) and glutamate-aspartate transporter (GLAST) in rat primary astrocytes. The synthetic glucocorticoid dexamethasone provoked a marked increase of GLT-1 transcription and protein levels in cortical astrocytes, whereas GLAST expression remained unaffected. Up-regulation of GLT-1 expression was accompanied by an enhanced glutamate uptake, which could be blocked …

Central Nervous SystemTime FactorsAmino Acid Transport System X-AGLigandsBiochemistryDexamethasoneRats Sprague-Dawleychemistry.chemical_compoundGlucocorticoid receptorMineralocorticoid receptorAdrenal Cortex HormonesCorticosteroneCerebellumGene expressionLuciferasesReceptorDNA Modification MethylasesKainic AcidReverse Transcriptase Polymerase Chain ReactionGlutamate receptorBrainImmunohistochemistryUp-RegulationMifepristoneAzacitidineNeurogliaGlucocorticoidmedicine.drugmedicine.medical_specialtymedicine.drug_classBlotting WesternDetergentsBiologyDecitabineTransfectionMembrane MicrodomainsInternal medicinemedicineAnimalsGlucocorticoidsMolecular BiologyDNA PrimersFluorescent DyesDose-Response Relationship DrugCell BiologyDNA MethylationRatsReceptors MineralocorticoidEndocrinologychemistryMineralocorticoidAstrocytesCorticosteroneJournal of Biological Chemistry
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Mechanisms of RNA loading into exosomes

2015

AbstractUpon fusion of multivesicular bodies (MVBs) with the plasma membrane, intraluminal vesicles (ILVs) are released into the extracellular space as exosomes. Since the lipid composition of the exosomal membrane resembles that of raft microdomains, the inward budding process involves the raft-like region of the MVB limiting membrane. Although published research suggests that cellular RNAs may be selectively sorted into exosomes, the molecular mechanisms remain elusive. In this review, we suggest that there is a continuous interaction of cellular RNAs with the outer (cytoplasmic) surface of MVBs and that the selection for incorporation of these RNAs into ILVs is based on their affinity to…

CeramideBiophysicsBiologyExosomesModels BiologicalBiochemistryIntraluminal vesiclesCeramideMembrane Lipidschemistry.chemical_compoundRaftsMembrane MicrodomainsStructural BiologymicroRNAGeneticsExtracellularAnimalsHumansMolecular BiologyVesicleCell MembraneMembraneMultivesicular BodiesRNA-Binding ProteinsRNAMicroRNACell BiologyRaftMicrovesiclesCell biologychemistryCytoplasmRNAlipids (amino acids peptides and proteins)FEBS Letters
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