Search results for " Interneurons"

showing 6 items of 6 documents

Increased Motor-Impairing Effects of the Neuroactive Steroid Pregnanolone in Mice with Targeted Inactivation of the GABAA Receptor γ2 Subunit in the …

2016

Endogenous neurosteroids and neuroactive steroids have potent and widespread actions on the brain via inhibitory GABAA receptors. In recombinant receptors and genetic mouse models their actions depend on the α, β, and δ subunits of the receptor, especially on those that form extrasynaptic GABAA receptors responsible for non-synaptic (tonic) inhibition, but they also act on synaptically enriched γ2 subunit-containing receptors and even on αβ binary receptors. Here we tested whether behavioral sensitivity to the neuroactive steroid agonist 5β-pregnan-3α-ol-20-one is altered in genetically engineered mouse models that have deficient GABAA receptor-mediated synaptic inhibition in selected neuro…

0301 basic medicineGAMMA-2-SUBUNITCerebellumNeuroactive steroidcerebellumDISORDERSPurkinje cellINHIBITIONBiologyPharmacologyGABAA-rho receptor03 medical and health scienceschemistry.chemical_compound0302 clinical medicineCRE RECOMBINASE EXPRESSIONmedicinePharmacology (medical)Pharmacology & PharmacyReceptorPARVALBUMIN-POSITIVE INTERNEURONSIN-VIVOOriginal ResearchPregnanolonePharmacologyScience & TechnologyGABAA receptorAllopregnanolonelcsh:RM1-950POINT MUTATIONA RECEPTORS3. Good health030104 developmental biologymedicine.anatomical_structurelcsh:Therapeutics. Pharmacologychemistrynervous systemPurkinje cellsALLOPREGNANOLONEextrasynaptic GABAA receptorsmotor performance1115 Pharmacology And Pharmaceutical Sciences3111 BiomedicineneurosteroidsLife Sciences & Biomedicine030217 neurology & neurosurgeryextrasynaptic GABA(A) receptors
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Effects of PSA Removal from NCAM on the Critical Period Plasticity Triggered by the Antidepressant Fluoxetine in the Visual Cortex.

2016

Neuronal plasticity peaks during critical periods of postnatal development and is reduced towards adulthood. Recent data suggests that windows of juvenile-like plasticity can be triggered in the adult brain by antidepressant drugs such as Fluoxetine. Although the exact mechanisms of how Fluoxetine promotes such plasticity remains unknown, several studies indicate that inhibitory circuits play an important role. The polysialylated form of the neural cell adhesion molecules (PSA-NCAM) has been suggested to mediate the effects of Fluoxetine and it is expressed in the adult brain by mature interneurons. Moreover, the enzymatic removal of PSA by neuroaminidase-N not only affects the structure of…

0301 basic medicinegenetic structuresPSA-NCAMta3112lcsh:RC321-571critical period plasticity03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineparvalbumin interneuronsSYNAPTIC PLASTICITYNeuroplasticitymedicinevisual plasticityMONOCULAR DEPRIVATIONlcsh:Neurosciences. Biological psychiatry. NeuropsychiatryREGULATES PLASTICITYOriginal ResearchbiologyMEDIAL PREFRONTAL CORTEXPOLYSIALIC ACID3112 NeurosciencesCELLULAR AND MOLECULAR NEUROSCIENCEfluoxetineLong-term potentiationSciences bio-médicales et agricoles3. Good healthOCULAR DOMINANCE PLASTICITYMonocular deprivation030104 developmental biologyVisual cortexmedicine.anatomical_structureSTRUCTURAL PLASTICITYnervous systemCELL-ADHESION MOLECULESynaptic plasticitybiology.proteinNeural cell adhesion moleculeLONG-TERM POTENTIATIONPsychologyNeuroscience030217 neurology & neurosurgeryParvalbuminNeuroscienceNEUROTROPHIC FACTORFOSB
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Specific Hippocampal Interneurons Shape Consolidation of Recognition Memory

2020

Summary A complex array of inhibitory interneurons tightly controls hippocampal activity, but how such diversity specifically affects memory processes is not well understood. We find that a small subclass of type 1 cannabinoid receptor (CB1R)-expressing hippocampal interneurons determines episodic-like memory consolidation by linking dopamine D1 receptor (D1R) signaling to GABAergic transmission. Mice lacking CB1Rs in D1-positive cells (D1-CB1-KO) display impairment in long-term, but not short-term, novel object recognition memory (NOR). Re-expression of CB1Rs in hippocampal D1R-positive cells rescues this NOR deficit. Learning induces an enhancement of in vivo hippocampal long-term potenti…

MaleAnimals CB1 receptor D1 receptor Dopamine Endocannabinoid system GABA Hippocampus Interneurons Long-term potentiation Male Memory Mice Novel object recognition Recognition PsychologyCB1 receptorCB1 cannabinoid receptorsD(1) receptorhippocampus[SDV]Life Sciences [q-bio]D1 receptorneuronsCB(1) receptorArticleCA1informationMiceGABAMemoryAnimalsendocannabinoid systemlong-term potentiationinterneuronsmusculoskeletal neural and ocular physiologyRecognition Psychologyepisodic memoryinhibition[SDV] Life Sciences [q-bio]modulationnervous systemdopamineLTPnovel object recognition memory
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Understanding Cannabinoid Psychoactivity with Mouse Genetic Models

2007

Marijuana and its main psychotropic ingredient Δ9-tetrahydrocannabinol (THC) exert a plethora of psychoactive effects through the activation of the neuronal cannabinoid receptor type 1 (CB1), which is expressed by different neuronal subpopulations in the central nervous system. The exact neuroanatomical substrates underlying each effect of THC are, however, not known. We tested locomotor, hypothermic, analgesic, and cataleptic effects of THC in conditional knockout mouse lines, which lack the expression of CB1 in different neuronal subpopulations, including principal brain neurons, GABAergic neurons (those that release γ aminobutyric acid), cortical glutamatergic neurons, and neurons expres…

MaleMESH: Body TemperatureCannabinoid receptormedicine.medical_treatmentGene ExpressionMESH: Receptor Cannabinoid CB1NeocortexMESH: gamma-Aminobutyric AcidMESH: CatalepsyPharmacologyHippocampusMESH: Mice KnockoutMESH: Corpus StriatumBody TemperatureMESH: Autonomic Nervous SystemMESH: NeocortexMice0302 clinical medicineReceptor Cannabinoid CB1MESH: Behavior AnimalCannabinoid receptor type 1MESH: AnimalsMESH: Gene SilencingDronabinolMESH: NociceptorsBiology (General)gamma-Aminobutyric AcidMice Knockout0303 health sciencesBehavior Animalmusculoskeletal neural and ocular physiologyGeneral NeuroscienceMESH: Pain ThresholdNociceptorsMESH: Glutamic AcidMESH: InterneuronsMESH: Motor Activity3. Good healthGABAergicMESH: TetrahydrocannabinolGeneral Agricultural and Biological SciencesResearch Articlemedicine.drugPain ThresholdMESH: Gene ExpressionMESH: Psychotropic DrugsQH301-705.5Glutamic AcidMotor ActivityBiologyAutonomic Nervous SystemGeneral Biochemistry Genetics and Molecular Biologygamma-Aminobutyric acid03 medical and health sciencesGlutamatergicDopamine receptor D1InterneuronsCannabinoid Receptor Modulatorsmental disorders[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologymedicineAnimalsGenetic Predisposition to Disease[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular BiologyGene SilencingTetrahydrocannabinolMESH: MiceAnesthesiology and Pain Management030304 developmental biologyPharmacologyCatalepsyPsychotropic DrugsModels GeneticGeneral Immunology and MicrobiologyCannabinoidsIllicit Drugsorganic chemicalsMESH: MaleCorpus StriatumPrimerDisease Models Animalnervous systemCannabinoidNervous System Diseases030217 neurology & neurosurgeryNeurosciencePLoS Biology
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Long term effects of peripubertal stress on excitatory and inhibitory circuits in the prefrontal cortex of male and female mice.

2021

Abstract The impact of stressful events is especially important during early life, because certain cortical regions, especially the prefrontal cortex (PFC), are still developing. Consequently, aversive experiences that occur during the peripubertal period can cause long-term alterations in neural connectivity, physiology and related behaviors. Although sex influences the stress response and women are more likely to develop stress-related psychiatric disorders, knowledge about the effects of stress on females is still limited. In order to analyze the long-term effects of peripubertal stress (PPS) on the excitatory and inhibitory circuitry of the adult PFC, and whether these effects are sex-d…

Neurophysiology and neuropsychologyDendritic spinePhysiologybrainvulnerabilityNeurosciences. Biological psychiatry. Neuropsychiatrychronic social-isolationNeurotransmissionInhibitory postsynaptic potentialBiochemistry03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineEndocrinologyparvalbumin interneuronsBasket cellexpressionmedicineratOriginal Research ArticlePrefrontal cortexRC346-429Molecular BiologybiologyEndocrine and Autonomic SystemsQP351-495dendritic morphology030227 psychiatrymedicine.anatomical_structurenervous systemplasticitybiology.proteinExcitatory postsynaptic potentialNeural cell adhesion moleculeNeurology. Diseases of the nervous systemearly-life stressNeurosciencesex-differences030217 neurology & neurosurgeryParvalbuminRC321-571Neurobiology of stress
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Age-dependent epileptic encephalopathy associated with an unusual co-occurrence of ZEB2 and SCN1A variants.

2020

Mowat-Wilson syndrome is a genetic disorder associated with a variable phenotype including peculiar facial features associated with intellectual disability, epilepsy, language impairment, and multiple congenital anomalies caused by heterozygous mutation of the ZEB2 gene. The ZEB2 protein is a complex transcription factor that encompasses multiple functional domains that interact with the regulatory regions of target genes including those involved in brain development. Recently, it has been documented that ZEB2 regulates the differentiation of interneuron progenitors migrating from the medial ganglionic eminence to cortical layers by repression of the Nkx2-1 homeobox transcription factor. It…

ZEB2genotype-phenotype correlationSettore MED/38 - Pediatria Generale E SpecialisticaSettore M-PSI/08 - Psicologia ClinicaIntellectual DisabilityHumansMowat-Wilson syndromeEEGgenotype-phenotype correlationSCN1AHirschsprung DiseaseEEGChildGenetic Association StudiesZEB2Zinc Finger E-box Binding Homeobox 2EpilepsyEEG; epilepsy; GABAergic interneurons; genotype-phenotype correlation; Mowat-Wilson syndrome; SCN1A; ZEB2FaciesElectroencephalographySettore MED/39 - Neuropsichiatria InfantileGABAergic interneuronsMowat-Wilson syndromeepilepsyNAV1.1 Voltage-Gated Sodium ChannelGABAergic interneuronsMicrocephalySettore MED/26 - NeurologiaFemaleEpileptic disorders : international epilepsy journal with videotape
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