Search results for "Synaptic fatigue"

showing 10 items of 11 documents

Intra-neuronal Competition for Synaptic Partners Conserves the Amount of Dendritic Building Material

2017

Brain development requires correct targeting of multiple thousand synaptic terminals onto staggeringly complex dendritic arbors. The mechanisms by which input synapse numbers are matched to dendrite size, and by which synaptic inputs from different transmitter systems are correctly partitioned onto a postsynaptic arbor, are incompletely understood. By combining quantitative neuroanatomy with targeted genetic manipulation of synaptic input to an identified Drosophila neuron, we show that synaptic inputs of two different transmitter classes locally direct dendrite growth in a competitive manner. During development, the relative amounts of GABAergic and cholinergic synaptic drive shift dendrit…

0301 basic medicineDendritic spinePresynaptic TerminalsBiologyReceptors NicotinicArticleSynapse03 medical and health sciencesDendrite (crystal)Calcium Channels T-Type0302 clinical medicinePostsynaptic potentialSynaptic augmentationmedicineAnimalsDrosophila ProteinsCalcium Signalinggamma-Aminobutyric AcidNeuronsNeuronal PlasticityGeneral NeuroscienceDendritesReceptors GABA-AAcetylcholine030104 developmental biologySynaptic fatiguemedicine.anatomical_structurenervous systemSynaptic plasticitySynapsesDrosophilaNeuronNeuroscience030217 neurology & neurosurgery
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PTEN recruitment controls synaptic and cognitive function in Alzheimer's models

2016

Dyshomeostasis of amyloid-β peptide (Aβ) is responsible for synaptic malfunctions leading to cognitive deficits ranging from mild impairment to full-blown dementia in Alzheimer's disease. Aβ appears to skew synaptic plasticity events toward depression. We found that inhibition of PTEN, a lipid phosphatase that is essential to long-term depression, rescued normal synaptic function and cognition in cellular and animal models of Alzheimer's disease. Conversely, transgenic mice that overexpressed PTEN displayed synaptic depression that mimicked and occluded Aβ-induced depression. Mechanistically, Aβ triggers a PDZ-dependent recruitment of PTEN into the postsynaptic compartment. Using a PTEN kno…

0301 basic medicinePrimary Cell CulturePDZ DomainsMice TransgenicMolecular neuroscienceBiologyNeurotransmissionSynaptic TransmissionMice03 medical and health sciences0302 clinical medicineAlzheimer DiseasePostsynaptic potentialmedicineAnimalsPTENGene Knock-In TechniquesAmyloid beta-PeptidesGeneral NeurosciencePTEN PhosphohydrolaseLong-term potentiationmedicine.diseaseRatsDisease Models Animal030104 developmental biologySynaptic fatigueSynaptic plasticitybiology.proteinAlzheimer's diseaseCognition DisordersNeuroscience030217 neurology & neurosurgeryNature Neuroscience
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Stressor-related impairment of synaptic transmission in hippocampal slices from α-synuclein knockout mice

2004

The role of alpha-synuclein (alpha-Syn) has recently received considerable attention because it seems to play a role in Parkinson's disease (PD). Missense mutations in the alpha-Syn gene were found in autosomal dominant PD and alpha-Syn was shown to be a major constituent of protein aggregates in sporadic PD and other synucleinopathies. Under normal conditions, alpha-Syn protein is found exclusively in synaptic terminals. However, the potential participation of alpha-synuclein in maintaining and regulating synaptic efficacy is unknown. We have investigated the excitatory synaptic modulation of alpha-synuclein in CA1 pyramidal neurons, using the in vitro hippocampal slice technique. The 4-am…

Alpha-synucleinanimal diseasesGeneral NeuroscienceHippocampusNeurotransmissionBiologynervous system diseaseschemistry.chemical_compoundSynaptic fatiguenervous systemchemistrySynaptic augmentationSynaptic plasticityKnockout mouseExcitatory postsynaptic potentialNeuroscienceEuropean Journal of Neuroscience
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Minireview: pH and synaptic transmission

2013

AbstractAs a general rule a rise in pH increases neuronal activity, whereas it is dampened by a fall of pH. Neuronal activity per se also challenges pH homeostasis by the increase of metabolic acid equivalents. Moreover, the negative membrane potential of neurons promotes the intracellular accumulation of protons. Synaptic key players such as glutamate receptors or voltage-gated calcium channels show strong pH dependence and effects of pH gradients on synaptic processes are well known. However, the processes and mechanisms that allow controlling the pH in synaptic structures and how these mechanisms contribute to normal synaptic function are only beginning to be resolved.

BiophysicsNeurotransmissionBiochemistryMouse modelGABAStructural BiologySynaptic augmentationGeneticsAnimalsHumansPremovement neuronal activitySynaptic transmissionMolecular BiologyNeuronal excitabilityCarbonic AnhydrasesAcid-Base EquilibriumMembrane potentialCarbonic anhydraseVoltage-dependent calcium channelChemistryGlutamate receptorCell BiologyBicarbonatesSynaptic fatigueBiochemistrypH regulationSynapsesSynaptic plasticityBiophysicsIon transporterFEBS Letters
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The expression mechanism of the residual LTP in the CA1 region of BDNF k.o. mice is insensitive to NO synthase inhibition

2011

Abstract BDNF and nitric oxide signaling both contribute to long-term potentiation (LTP) at glutamatergic synapses, but to date, few studies analyzed the interaction of both signaling cascades in the same synaptic pathway. Here we addressed the question whether the residual LTP in the CA1 region of hippocampal slices from heterozygous BDNF knockout mice (BDNF +/− ) is dependent on nitric oxide (NO) signaling. Extracellular recording of synaptic field potentials elicited by presynaptic Schaffer collateral stimulation was performed in the CA1 region of hippocampal slices of 4- to 6-week-old mice, and LTP was induced by a theta burst stimulation protocol. Application of the nitric oxide inhibi…

Long-Term PotentiationBiophysicsTropomyosin receptor kinase BIn Vitro TechniquesBiologyNitric oxideMicechemistry.chemical_compoundmedicineAnimalsEnzyme InhibitorsCA1 Region HippocampalMolecular BiologyMice KnockoutBrain-derived neurotrophic factorBrain-Derived Neurotrophic Factormusculoskeletal neural and ocular physiologyGeneral NeuroscienceExcitatory Postsynaptic PotentialsLong-term potentiationElectric StimulationCell biologyMice Inbred C57BLNG-Nitroarginine Methyl EsterSynaptic fatiguemedicine.anatomical_structureAnimals Newbornnervous systemchemistrySchaffer collateralSynaptic plasticityRetrograde signalingNeurology (clinical)Nitric Oxide SynthaseNeuroscienceDevelopmental BiologyBrain Research
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Dysregulated Expression of Neuregulin-1 by Cortical Pyramidal Neurons Disrupts Synaptic Plasticity

2014

Summary Neuregulin-1 ( NRG1 ) gene variants are associated with increased genetic risk for schizophrenia. It is unclear whether risk haplotypes cause elevated or decreased expression of NRG1 in the brains of schizophrenia patients, given that both findings have been reported from autopsy studies. To study NRG1 functions in vivo, we generated mouse mutants with reduced and elevated NRG1 levels and analyzed the impact on cortical functions. Loss of NRG1 from cortical projection neurons resulted in increased inhibitory neurotransmission, reduced synaptic plasticity, and hypoactivity. Neuronal overexpression of cysteine-rich domain (CRD)-NRG1, the major brain isoform, caused unbalanced excitato…

MaleDendritic SpinesNeuregulin-1Nonsynaptic plasticityGene ExpressionMice TransgenicNeurotransmissionInhibitory postsynaptic potentialSynaptic TransmissionGeneral Biochemistry Genetics and Molecular BiologyCell MovementInterneuronsConditioning Psychologicalmental disordersAnimalsNeuregulin 1lcsh:QH301-705.5CA1 Region HippocampalNeuronal PlasticitybiologyPyramidal CellsAnatomyFearCortex (botany)Synaptic fatiguelcsh:Biology (General)Synaptic plasticitybiology.proteinExcitatory postsynaptic potentialFemaleNerve NetNeuroscience
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Membrane-Derived Phospholipids Control Synaptic Neurotransmission and Plasticity

2015

Synaptic communication is a dynamic process that is key to the regulation of neuronal excitability and information processing in the brain. To date, however, the molecular signals controlling synaptic dynamics have been poorly understood. Membrane-derived bioactive phospholipids are potential candidates to control short-term tuning of synaptic signaling, a plastic event essential for information processing at both the cellular and neuronal network levels in the brain. Here, we showed that phospholipids affect excitatory and inhibitory neurotransmission by different degrees, loci, and mechanisms of action. Signaling triggered by lysophosphatidic acid (LPA) evoked rapid and reversible depress…

MalePatch-Clamp TechniquesQH301-705.5NeurotransmissionBiologyInhibitory postsynaptic potentialSynaptic TransmissionGeneral Biochemistry Genetics and Molecular BiologyMicePregnancySynaptic augmentationMetaplasticityAnimalsRats WistarBiology (General)Motor Neuronsrho-Associated KinasesNeuronal PlasticityGeneral Immunology and MicrobiologyCalcineurinGeneral NeuroscienceReceptors GABA-ACell biologySynaptic fatigueBiochemistrySynapsesSynaptic plasticityExcitatory postsynaptic potentialFemalelipids (amino acids peptides and proteins)Synaptic signalingLysophospholipidsrhoA GTP-Binding ProteinGeneral Agricultural and Biological SciencesResearch Article
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Reduced presynaptic efficiency of excitatory synaptic transmission impairs LTP in the visual cortex of BDNF-heterozygous mice

2006

The neurotrophin brain-derived neurotrophic factor (BDNF) plays an important role in neuronal survival, axonal and dendritic growth and synapse formation. BDNF has also been reported to mediate visual cortex plasticity. Here we studied the cellular mechanisms of BDNF-mediated changes in synaptic plasticity, excitatory synaptic transmission and long-term potentiation (LTP) in the visual cortex of heterozygous BDNF-knockout mice (BDNF(+/-)). Patch-clamp recordings in slices showed an approximately 50% reduction in the frequency of miniature excitatory postsynaptic currents (mEPSCs) compared to wild-type animals, in the absence of changes in mEPSC amplitudes. A presynaptic impairment of excita…

N-MethylaspartatePatch-Clamp TechniquesTime FactorsLong-Term PotentiationPresynaptic TerminalsAMPA receptorIn Vitro TechniquesSynaptic TransmissionMicePostsynaptic potentialQuinoxalinesExcitatory Amino Acid AgonistsAnimalsalpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic AcidVisual CortexMice KnockoutNeuronsBrain-derived neurotrophic factorDose-Response Relationship DrugPost-tetanic potentiationChemistryBrain-Derived Neurotrophic FactorGeneral NeuroscienceDose-Response Relationship RadiationLong-term potentiationElectric StimulationSynaptic fatigueAnimals Newbornnervous systemSynaptic plasticityExcitatory postsynaptic potentialCalciumExcitatory Amino Acid AntagonistsNeuroscienceEuropean Journal of Neuroscience
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Synaptopodin regulates denervation-induced homeostatic synaptic plasticity

2013

Synaptopodin (SP) is a marker and essential component of the spine apparatus (SA), an enigmatic cellular organelle composed of stacked smooth endoplasmic reticulum that has been linked to synaptic plasticity. However, SP/SA-mediated synaptic plasticity remains incompletely understood. To study the role of SP/SA in homeostatic synaptic plasticity we here used denervation-induced synaptic scaling of mouse dentate granule cells as a model system. This form of plasticity is of considerable interest in the context of neurological diseases that are associated with the loss of neurons and subsequent denervation of connected brain regions. In entorhino-hippocampal slice cultures prepared from SP-de…

Patch-Clamp TechniquesDendritic SpinesGreen Fluorescent ProteinsNonsynaptic plasticityMice TransgenicTetrodotoxinBiologyIn Vitro TechniquesHippocampusReceptors N-Methyl-D-AspartateMiceHomeostatic plasticitySynaptic augmentationMetaplasticityAnimalsEntorhinal CortexHomeostasisPromoter Regions GeneticMultidisciplinarySynaptic scalingNeuronal PlasticityMicrofilament ProteinsRyanodine Receptor Calcium Release ChannelBiological SciencesDenervationSpine apparatusMice Inbred C57BLSynaptic fatigueSynaptic plasticityDentate GyrusSynapsesCalcium ChannelsNeuroscience
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A critical role for VEGF and VEGFR2 in NMDA receptor synaptic function and fear-related behavior

2016

Vascular endothelial growth factor (VEGF) is known to be required for the action of antidepressant therapies but its impact on brain synaptic function is poorly characterized. Using a combination of electrophysiological, single-molecule imaging and conditional transgenic approaches, we identified the molecular basis of the VEGF effect on synaptic transmission and plasticity. VEGF increases the postsynaptic responses mediated by the N-methyl-D-aspartate type of glutamate receptors (GluNRs) in hippocampal neurons. This is concurrent with the formation of new synapses and with the synaptic recruitment of GluNR expressing the GluN2B subunit (GluNR-2B). VEGF induces a rapid redistribution of Glu…

Vascular Endothelial Growth Factor A0301 basic medicine[SDV]Life Sciences [q-bio]Cell Culture TechniquesNonsynaptic plasticityBiologyNeurotransmissionHippocampusReceptors N-Methyl-D-AspartateSynaptic TransmissionMice03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicinePostsynaptic potentialAnimalsddc:610Molecular BiologyComputingMilieux_MISCELLANEOUSNeuronsNeuronal PlasticityBehavior AnimalGlutamate receptorExcitatory Postsynaptic PotentialsKinase insert domain receptorFearVascular Endothelial Growth Factor Receptor-2Protein SubunitsPsychiatry and Mental health030104 developmental biologySynaptic fatigueReceptors GlutamateSynapsesSynaptic plasticityNMDA receptorOriginal ArticleNeuroscience030217 neurology & neurosurgery
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