Search results for "Nitric Oxide Synthase Type III"

showing 10 items of 119 documents

Physiological mechanisms regulating the expression of endothelial-type NO synthase

2002

Although endothelial nitric oxide synthase (eNOS) is a constitutively expressed enzyme, its expression is regulated by a number of biophysical, biochemical, and hormonal stimuli, both under physiological conditions and in pathology. This review summarizes the recent findings in this field. Shear stress, growth factors (such as transforming growth factor-beta, fibroblast growth factor, vascular endothelial growth factor, and platelet-derived growth factor), hormones (such as estrogens, insulin, angiotensin II, and endothelin 1), and other compounds (such as lysophosphatidylcholine) upregulate eNOS expression. On the other hand, the cytokine tumor necrosis factor-alpha and bacterial lipopolys…

Cancer Researchmedicine.medical_specialtyNitric Oxide Synthase Type IIIPhysiologyRNA Stabilitymedicine.medical_treatmentClinical BiochemistryBiologyFibroblast growth factorBiochemistryGene Expression Regulation Enzymologicchemistry.chemical_compoundEnosInternal medicinemedicineAnimalsPromoter Regions GeneticRegulation of gene expressionBase SequenceGene Expression ProfilingGrowth factorbiology.organism_classificationActin cytoskeletonAngiotensin IICell biologyVascular endothelial growth factorEndocrinologychemistryNitric Oxide SynthaseSignal transductionSignal TransductionNitric Oxide
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Mechanisms of Increased Vascular Superoxide Production in an Experimental Model of Idiopathic Dilated Cardiomyopathy

2005

Objective— In the present study, we sought to identify mechanisms underlying increased oxidative stress in vascular tissue in an experimental animal model of chronic congestive heart failure (CHF). Methods and Results— Superoxide and nitric oxide (NO) was measured in vessels from cardiomyopathic hamsters (CHF hamsters) and golden Syrian hamsters. We also determined expression of endothelial nitric oxide synthase (NOSIII), the soluble guanylyl cyclase, the cGMP-dependent kinase, and the NADPH oxidase. To analyze the contribution of the renin-angiotensin system to oxidative stress, CHF hamsters were treated with the angiotensin-converting enzyme inhibitor captopril for 200 days (120 mg · kg …

Cardiomyopathy DilatedMalemedicine.medical_specialtyCaptoprilNitric Oxide Synthase Type IIIReceptors Cytoplasmic and NuclearAngiotensin-Converting Enzyme InhibitorsNitric Oxidemedicine.disease_causeNitric oxideRenin-Angiotensin Systemchemistry.chemical_compoundSoluble Guanylyl CyclaseSuperoxidesCricetinaeInternal medicineIdiopathic dilated cardiomyopathymedicineAnimalsHeart FailureNADPH oxidaseMesocricetusbiologybusiness.industrySuperoxideMyocardiumBody WeightMicrofilament ProteinsNADPH OxidasesCaptoprilOrgan SizePhosphoproteinsDisease Models AnimalOxidative StressEndocrinologychemistryGuanylate CyclaseACE inhibitorbiology.proteinFemaleCardiology and Cardiovascular MedicinebusinessSoluble guanylyl cyclaseCell Adhesion MoleculesOxidative stressmedicine.drugArteriosclerosis, Thrombosis, and Vascular Biology
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Localization of the two constitutively expressed nitric oxide synthase isoforms (nNOS and eNOS) in the same cell types in the saccule maculae of the …

2003

There is growing evidence for a nitric oxide/cyclic GMP pathway of signal transduction in the vestibular system. Recently, two isoforms of nitric oxide (NO) synthase (nNOS and eNOS) and NO itself have been identified at the light microscopic level in the vestibulocochlear system of mice using specific antibodies and a new fluorescence indicator. In order to acquire more information about signal transduction and tissue modulation in this neuroepithelium at the cellular and subcellular levels, ultrathin sections of London Resin White-embedded saccule maculae of the frog Rana pipiens were incubated with various concentrations of commercially available antibodies to nNOS and eNOS. The immunorea…

Gene isoformCell typemedicine.medical_specialtyNitric Oxide Synthase Type IIIImmunoelectron microscopyImmunocytochemistryNitric Oxide Synthase Type IBiologyInternal medicineAcoustic MaculaeHair Cells AuditorymedicineAnimalsMicroscopy ImmunoelectronOrgan of CortiInstrumentationRana pipiensSubcellular localizationImmunohistochemistryCell biologyIsoenzymesNitric oxide synthaseNeuroepithelial cellEndocrinologyCytoplasmbiology.proteinNitric Oxide SynthaseJournal of Electron Microscopy
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Potential Functional Significance of Brain-Type and Muscle-Type Nitric Oxide Synthase I Expressed in Adventitia and Media of Rat Aorta

1999

Abstract —Skeletal muscle and myocardium express μNOS I, an elongated splice variant of neuronal-type nitric oxide (NO) synthase (NOS I), and NOS III, endothelial-type NO synthase, respectively. This study was designed to elucidate whether vascular smooth muscle also contains a constitutively expressed NO synthase isoform. In the rat, μNOS I contains an insert of 102 nucleotides after nucleotide 2865 of the cDNA, yielding a protein of 164 kd. Reverse transcription-polymerase chain reaction with primers flanking this insert and with insert-specific primers indicated that endothelium-denuded rat aorta expresses both brain-type NOS I and μNOS I. RNase protection analyses with an antisense RNA…

Gene isoformPathologymedicine.medical_specialtyDNA ComplementaryVascular smooth muscleNitric Oxide Synthase Type IIIBlotting WesternAorta ThoracicNitric Oxide Synthase Type INitroarginineGene Expression Regulation EnzymologicMuscle Smooth VascularMembrane PotentialsPotassium ChlorideNitric oxideImmunoenzyme TechniquesRats Sprague-DawleyNorepinephrinechemistry.chemical_compoundmedicine.arteryAdventitiamedicineAnimalsVasoconstrictor AgentsAorta AbdominalRNA MessengerMuscle SkeletalMessenger RNAAortabiologyBrainSkeletal muscleMolecular biologyRatsNitric oxide synthaseAntisense Elements (Genetics)medicine.anatomical_structurechemistryVasoconstrictionbiology.proteinCalciumFemaleNitric Oxide SynthaseTunica MediaCardiology and Cardiovascular MedicineArteriosclerosis, Thrombosis, and Vascular Biology
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Endothelial Nitric Oxide Synthase Regulates T Cell Receptor Signaling at the Immunological Synapse

2006

The role of nitric oxide (NO) in T cells remains controversial, and the origin and localization of endogenous NO and whether it regulates lymphocyte activation are unclear. We show here that, within minutes of binding to antigen, T cells produce NO via endothelial nitric oxide synthase (eNOS). This process required increased intracellular Ca2+ and phosphoinositide3-kinase activity. By using an eNOS-green fluorescent fusion protein and fluorescent probes to detect NO, we show that eNOS translocates with the Golgi apparatus to the immune synapse of T helper cells engaged with antigen-presenting cells (APC), where it was fully activated. Overexpression of eNOS prevented the central coalescence…

Interleukin 2CD3 ComplexNitric Oxide Synthase Type IIIT-LymphocytesImmunologyReceptors Antigen T-CellAntigen-Presenting CellsGolgi ApparatusBiologyLymphocyte ActivationNitric OxideNitric oxideImmunological synapseInterferon-gammaMicePhosphatidylinositol 3-Kinaseschemistry.chemical_compoundAntigenmedicineAnimalsHumansImmunology and AllergyCytotoxic T cellAntigensMOLIMMUNOAntigen-presenting cellNitric Oxide Synthase Type IIIMice Mutant StrainsCell biologyInfectious DiseaseschemistryInterleukin-2CalciumSignal transductionSignal Transductionmedicine.drugImmunity
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Role of Neutral Amino Acid Transport and Protein Breakdown for Substrate Supply of Nitric Oxide Synthase in Human Endothelial Cells

2003

Endothelial dysfunction is often associated with a relative substrate deficiency of the endothelial nitric oxide synthase (eNOS) in spite of apparently high intracellular arginine concentrations. For a better understanding of the underlying pathophysiological mechanisms, we aimed to characterize the intracellular arginine sources of eNOS. Our previous studies in human endothelial EA.hy926 cells suggested the existence of two arginine pools: pool I can be depleted by extracellular lysine, whereas pool II is not freely exchangeable with the extracellular space, but accessible to eNOS. In this study, we demonstrate that the eNOS accessible pool II is also present in human umbilical vein endoth…

Intracellular FluidUmbilical VeinsNitric Oxide Synthase Type IIIArginineEndotheliumPhysiologyGlutamineArginineTransfectionSubstrate Specificitychemistry.chemical_compoundEnosNeutral amino acid transportCitrullinemedicineAnimalsHumansAmino AcidsCells CulturedbiologyCarcinomaMembrane Transport ProteinsProteinsNitric Oxide Synthase Type IIIBiological Transportbiology.organism_classificationRatsEndothelial stem cellNitric oxide synthaseAmino Acid Transport Systems NeutralAmino Acids Neutralmedicine.anatomical_structureUrinary Bladder NeoplasmsBiochemistrychemistrybiology.proteinCitrullineEndothelium VascularNitric Oxide SynthaseCardiology and Cardiovascular MedicineCirculation Research
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eNOS S-nitrosylates β-actin on Cys374 and regulates PKC-θ at the immune synapse by impairing actin binding to profilin-1.

2017

The actin cytoskeleton coordinates the organization of signaling microclusters at the immune synapse (IS); however, the mechanisms involved remain poorly understood. We show here that nitric oxide (NO) generated by endothelial nitric oxide synthase (eNOS) controls the coalescence of protein kinase C-¿ (PKC-¿) at the central supramolecular activation cluster (c-SMAC) of the IS. eNOS translocated with the Golgi to the IS and partially colocalized with F-actin around the c-SMAC. This resulted in reduced actin polymerization and centripetal retrograde flow of ß-actin and PKC-¿ from the lamellipodium-like distal (d)-SMAC, promoting PKC-¿ activation. Furthermore, eNOS-derived NO S-nitrosylated ß-…

Life Sciences & Biomedicine - Other Topics0301 basic medicinePOLARIZATIONIMMUNOLOGICAL SYNAPSEImmunological SynapsesT-LymphocytesPROTEINGolgi ApparatusCYTOSKELETONRetrograde FlowBiochemistryARP2/3 COMPLEXT-CELL-ACTIVATIONProfilinsWhite Blood CellsContractile ProteinsFluorescence MicroscopyAnimal CellsMedicine and Health SciencesPseudopodiaBiology (General)Post-Translational ModificationCells CulturedProtein Kinase CMicroscopyT CellsGeneral NeuroscienceLight MicroscopyNeurochemistryRecombinant Proteins3. Good healthIsoenzymesPOLYMERIZATIONProtein TransportCell ProcessesRNA InterferenceCellular TypesNeurochemicalsGeneral Agricultural and Biological SciencesLife Sciences & BiomedicineResearch ArticleBiochemistry & Molecular BiologyNitric Oxide Synthase Type IIIQH301-705.5Imaging TechniquesRecombinant Fusion ProteinsImmune CellsImmunologyLibrary scienceAntigen-Presenting Cellsmacromolecular substancesBiologyNitric OxideResearch and Analysis MethodsGeneral Biochemistry Genetics and Molecular BiologyCell Line03 medical and health sciencesFluorescence ImagingHumansCysteineNITRIC-OXIDE SYNTHASEBiologyScience & TechnologyBlood CellsRECEPTORGeneral Immunology and MicrobiologyBiology and Life SciencesProteinsCell BiologyActinsS-NitrosylationEnzyme ActivationLuminescent ProteinsCytoskeletal Proteins030104 developmental biologyAmino Acid SubstitutionRETROGRADE FLOWProtein Kinase C-thetaMutationProtein Processing Post-TranslationalNeuroscienceActin PolymerizationPLoS biology
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Expressional control of the ‘constitutive’ isoforms of nitric oxide synthase (NOS I and NOS III)

1998

Nitric oxide synthase (NOS) exists in three established isoforms. NOS I (NOS1, ncNOS) was originally discovered in neurons. This enzyme and splice variants thereof have since been found in many other cells and tissues. NOS II (NOS2, iNOS) was first identified in murine macrophages, but can also be induced in many other cell types. NOS III (NOS3, ecNOS) is expressed mainly in endothelial cells. Whereas NOS II is a transcriptionally regulated enzyme, NOS I and NOS III are considered constitutively expressed proteins. However, evidence generated in recent years indicates that these two isoforms are also subject to expressional regulation. In view of the important biological functions of these …

LipopolysaccharidesGene isoformNitric Oxide Synthase Type IIITranscription GeneticNOS1Nitric Oxide Synthase Type IBiochemistryTranscription (biology)GeneticsTranscriptional regulationAnimalsHumansRNA MessengerGrowth SubstancesMolecular BiologyTranscription factorRegulation of gene expressionPolymorphism GeneticbiologyChemistryChromosome MappingLysophosphatidylcholinesNitric Oxide Synthase Type IIIEstrogensExonsCell biologyIsoenzymesLipoproteins LDLOxygenNitric oxide synthaseGene Expression Regulationbiology.proteinCytokinesNitric Oxide SynthaseGene DeletionBiotechnologyThe FASEB Journal
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Brain BDNF levels are dependent on cerebrovascular endothelium-derived nitric oxide

2016

International audience; Scientific evidence continues to demonstrate a link between endothelial function and cognition. Besides, several studies have identified a complex interplay between nitric oxide (NO) and brain-derived neurotrophic factor (BDNF), a neurotrophin largely involved in cognition. Therefore, this study investigated the link between cerebral endothelium-derived NO and BDNF signaling. For this purpose, levels of BDNF and the phosphorylated form of endothelial NO synthase at serine 1177 (p-eNOS) were simultaneously measured in the cortex and hippocampus of rats subjected to either bilateral common carotid occlusion (n=6), physical exercise (n=6) or a combination of both (n=6) …

Male0301 basic medicinemedicine.medical_specialtyNitric Oxide Synthase Type IIIEndotheliumHippocampusPhysical exerciseTropomyosin receptor kinase BHippocampusNitric oxide03 medical and health scienceschemistry.chemical_compound0302 clinical medicine[SDV.MHEP.CSC]Life Sciences [q-bio]/Human health and pathology/Cardiology and cardiovascular systemphysical exercisenitric oxideNeurotrophic factorsPhysical Conditioning AnimalInternal medicinemedicineAnimalsReceptor trkBRats WistarCerebral CortexBrain-derived neurotrophic factorbiologyChemistry[SCCO.NEUR]Cognitive science/NeuroscienceGeneral Neurosciencebrain-derived neurotrophic factorTrkB[ SDV.MHEP.CSC ] Life Sciences [q-bio]/Human health and pathology/Cardiology and cardiovascular systemRatsCerebrovascular Disorders030104 developmental biologyEndocrinologymedicine.anatomical_structurecarotid arteries occlusionnervous system[ SCCO.NEUR ] Cognitive science/Neurosciencebiology.proteinEndothelium VascularNeuroscience030217 neurology & neurosurgeryNeurotrophinEuropean Journal of Neuroscience
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Retinal arteriole reactivity in mice lacking the endothelial nitric oxide synthase (eNOS) gene

2018

Dysfunctional vascular endothelial nitric oxide synthase (eNOS) has been proposed to play a main pathophysiological role in various ocular diseases. The aim of the present study was to test the hypothesis that the chronic lack of eNOS impairs endothelium-dependent vasodilation in retinal arterioles. The relevance of eNOS for mediating vascular responses was studied in retinal vascular preparations from eNOS-deficient mice (eNOS-/-) and wild-type controls in vitro. Changes in luminal diameter in response to vasoactive agents were measured by videomicroscopy. The thromboxane mimetic, U46619, induced similar concentration-dependent constriction of retinal arterioles in eNOS-/- and wild-type mi…

Male0301 basic medicinemedicine.medical_specialtyNitric Oxide Synthase Type IIIEndotheliumRetinal ArteryThromboxaneVasodilationMice03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineRetinal DiseasesEnosInternal medicinemedicineAnimalsEndothelial dysfunctionbiologyChemistrybiology.organism_classificationmedicine.diseaseSensory SystemsMice Inbred C57BLVasodilationNitric oxide synthaseArteriolesDisease Models AnimalOphthalmology030104 developmental biologyEndocrinologymedicine.anatomical_structureGene Expression Regulation030221 ophthalmology & optometrybiology.proteinRNACholinergicEndothelium VascularAcetylcholinemedicine.drugExperimental Eye Research
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