Search results for "Biological Psychiatry"

showing 10 items of 1387 documents

MECP2 impairs neuronal structure by regulating KIBRA

2016

Using a Drosophila model of MECP2 gain-of-function, we identified memory associated KIBRA as a target of MECP2 in regulating dendritic growth. We found that expression of human MECP2 increased kibra expression in Drosophila, and targeted RNAi knockdown of kibra in identified neurons fully rescued dendritic defects as induced by MECP2 gain-of-function. Validation in mouse confirmed that Kibra is similarly regulated by Mecp2 in a mammalian system. We found that Mecp2 gain-of-function in cultured mouse cortical neurons caused dendritic impairments and increased Kibra levels. Accordingly, Mecp2 loss-of-function in vivo led to decreased Kibra levels in hippocampus, cortex, and cerebellum. Togeth…

0301 basic medicinecongenital hereditary and neonatal diseases and abnormalitiesCerebellumMethyl-CpG-Binding Protein 2Dendritic morphologyHippocampusDisease modelsHippocampusArticlelcsh:RC321-571MECP2Mice03 medical and health sciencesMemoryRNA interferencemental disordersmedicineAnimalsHumanslcsh:Neurosciences. Biological psychiatry. NeuropsychiatryCerebral CortexNeuronsGene knockdownMECP2 duplication syndromebiologybiology.organism_classificationMECP2nervous system diseasesCortex (botany)Disease Models AnimalDrosophila melanogaster030104 developmental biologymedicine.anatomical_structureNeurologyCerebral cortexDrosophilaDrosophila melanogasterNeuroscienceNeurobiology of Disease
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Dysregulated Prefrontal Cortex Inhibition in Prepubescent and Adolescent Fragile X Mouse Model

2020

Changes in excitation and inhibition are associated with the pathobiology of neurodevelopmental disorders of intellectual disability and autism and are widely described in Fragile X syndrome (FXS). In the prefrontal cortex (PFC), essential for cognitive processing, excitatory connectivity and plasticity are found altered in the FXS mouse model, however, little is known about the state of inhibition. To that end, we investigated GABAergic signaling in the Fragile X Mental Retardation 1 (FMR1) knock out (Fmr1-KO) mouse medial PFC (mPFC). We report changes at the molecular, and functional levels of inhibition at three (prepubescence) and six (adolescence) postnatal weeks. Functional changes we…

0301 basic medicinecongenital hereditary and neonatal diseases and abnormalitiesGABAB receptorBiologyInhibitory postsynaptic potentiallcsh:RC321-57103 medical and health sciencesCellular and Molecular NeuroscienceGABA0302 clinical medicineNeurodevelopmental disorderSDG 3 - Good Health and Well-beingmedicinePrefrontal cortexMolecular Biologylcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal Researchprefrontal cortexGABAA receptormedicine.diseaseelectrophysiologyFMR1Fragile X syndrome030104 developmental biologyplasticityFragile XGABAergic/dk/atira/pure/sustainabledevelopmentgoals/good_health_and_well_beingNeuroscience030217 neurology & neurosurgeryNeuroscienceFrontiers in Molecular Neuroscience
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Neuroactive Steroids Reverse Tonic Inhibitory Deficits in Fragile X Syndrome Mouse Model

2018

Fragile X syndrome (FXS) is the most common form of inherited intellectual disability. A reduction in neuronal inhibition mediated by γ-aminobutyric acid type A receptors (GABAARs) has been implicated in the pathophysiology of FXS. Neuroactive steroids (NASs) are known allosteric modulators of GABAAR channel function, but recent studies from our laboratory have revealed that NASs also exert persistent metabotropic effects on the efficacy of tonic inhibition by increasing the protein kinase C (PKC)-mediated phosphorylation of the α4 and β3 subunits which increase the membrane expression and boosts tonic inhibition. We have assessed the GABAergic signaling in the hippocampus of fragile X ment…

0301 basic medicinecongenital hereditary and neonatal diseases and abnormalitiesmedicine.medical_specialtyNeuroactive steroidGABAA receptor (GABAAR)fragile XInhibitory postsynaptic potentialTonic (physiology)lcsh:RC321-571tonic inhibition03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineInternal medicinemedicineMolecular Biologylcsh:Neurosciences. Biological psychiatry. NeuropsychiatryProtein kinase COriginal ResearchChemistryphosphorylationDentate gyrusFMR1030104 developmental biologyEndocrinologyMetabotropic receptorGABAergicneurosteroidbenzodiazepine030217 neurology & neurosurgeryNeuroscienceFrontiers in Molecular Neuroscience
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Astrocytic Ephrin-B1 Controls Synapse Formation in the Hippocampus During Learning and Memory

2020

Astrocytes play a fundamental role in synapse formation, pruning, and plasticity, which are associated with learning and memory. However, the role of astrocytes in learning and memory is still largely unknown. Our previous study showed that astrocyte-specific ephrin-B1 knock-out (KO) enhanced but ephrin-B1 overexpression (OE) in hippocampal astrocytes impaired contextual memory recall following fear conditioning. The goal of this study was to understand the mechanism by which astrocytic ephrin-B1 influences learning; specifically, learning-induced remodeling of synapses and dendritic spines in CA1 hippocampus using fear-conditioning paradigm. While we found a higher dendritic spine density …

0301 basic medicinecontextual memoryDendritic spinehippocampus1.1 Normal biological development and functioningeducationHippocampusBiologyHippocampal formationBasic Behavioral and Social Sciencelcsh:RC321-571Synapse03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineastrocyteUnderpinning researchsynapseBehavioral and Social Sciencemedicineephrin-B1Fear conditioninglcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal ResearchRecalldendritic spineNeurosciencesCell BiologySpine (zoology)030104 developmental biologymedicine.anatomical_structureMental Healthnervous systemNeurologicalBiochemistry and Cell BiologyNeuroscience030217 neurology & neurosurgeryAstrocyteNeuroscienceFrontiers in Synaptic Neuroscience
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Coincident Activation of Glutamate Receptors Enhances GABAA Receptor-Induced Ionic Plasticity of the Intracellular Cl−-Concentration in Dissociated N…

2019

Massive activation of γ-amino butyric acid A (GABAA) receptors during pathophysiological activity induces an increase in the intracellular Cl−-concentration ([Cl−]i), which is sufficient to render GABAergic responses excitatory. However, to what extent physiological levels of GABAergic activity can influence [Cl−]i is not known. Aim of the present study is to reveal whether moderate activation of GABAA receptors mediates functionally relevant [Cl−]i changes and whether these changes can be augmented by coincident glutamatergic activity. To address these questions, we used whole-cell patch-clamp recordings from cultured cortical neurons [at days in vitro (DIV) 6–22] to determine changes in t…

0301 basic medicinedissociated cell cultureKCC2StimulationGABA(A) receptorsreversal potentiallcsh:RC321-57103 medical and health sciencesCellular and Molecular NeuroscienceGlutamatergicchemistry.chemical_compound0302 clinical medicinerheobaseReversal potentialionic plasticitylcsh:Neurosciences. Biological psychiatry. NeuropsychiatrymouseOriginal ResearchChemistryGABAA receptorGlutamate receptor030104 developmental biologyMuscimolCellular NeuroscienceBiophysicsExcitatory postsynaptic potentialCl−-homeostasisGABAergic030217 neurology & neurosurgeryFrontiers in Cellular Neuroscience
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Effects of Dopamine on the Immature Neurons of the Adult Rat Piriform Cortex

2020

The layer II of the adult piriform cortex (PCX) contains a numerous population of immature neurons. Interestingly, in both mice and rats, most, if not all, these cells have an embryonic origin. Moreover, recent studies from our laboratory have shown that they progressively mature into typical excitatory neurons of the PCX layer II. Therefore, the adult PCX is considered a “non-canonical” neurogenic niche. These immature neurons express the polysialylated form of the neural cell adhesion molecule (PSA-NCAM), a molecule critical for different neurodevelopmental processes. Dopamine (DA) is a relevant neurotransmitter in the adult CNS, which also plays important roles in neural development and …

0301 basic medicinedopamine D2 receptorPSA-NCAMPopulationBiologylcsh:RC321-57103 medical and health scienceschemistry.chemical_compoundpiriform cortex0302 clinical medicineDopaminePiriform cortexDopamine receptor D2medicineeducationNeurotransmitterlcsh:Neurosciences. Biological psychiatry. Neuropsychiatryeducation.field_of_studyGeneral NeuroscienceDopaminergicBrief Research ReportCell biology030104 developmental biologychemistrynervous systemplasticityNeural cell adhesion moleculedopamineNeural development030217 neurology & neurosurgeryNeurosciencemedicine.drug
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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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Is there evidence for a rostral-caudal gradient in fronto-striatal loops and what role does dopamine play?

2018

Research has shown that the lateral prefrontal cortex (LPFC) may be hierarchically organized along a rostral-caudal functional gradient such that control processing becomes progressively more abstract from caudal to rostral frontal regions. Here, we briefly review the most recent functional MRI, neuropsychological, and electrophysiological evidence in support of a hierarchical LPFC organization. We extend these observations by discussing how such a rostral-caudal gradient may also exist in the striatum and how the dopaminergic system may play an important role in the hierarchical organization of fronto-striatal loops. There is evidence indicating that a rostral-caudal gradient of dopamine r…

0301 basic medicinehierarchical processingReviewStriatumBiologylcsh:RC321-57103 medical and health sciences0302 clinical medicineDopaminemedicineHierarchical organizationlcsh:Neurosciences. Biological psychiatry. NeuropsychiatryGeneral NeuroscienceDopaminergicNeuropsychologylateral prefrontal cortexElectrophysiology030104 developmental biologynervous systemDopamine receptorfronto-striatal loopsreceptor distributiondopamineLateral prefrontal cortexNeuroscience030217 neurology & neurosurgeryNeurosciencemedicine.drug
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Mechanisms Underlying Memory Consolidation by Adult-Born Neurons During Sleep

2020

The mammalian hippocampus generates new neurons that incorporate into existing neuronal networks throughout the lifespan, which bestows a unique form of cellular plasticity to the memory system. Recently, we found that hippocampal adult-born neurons (ABNs) that were active during learning reactivate during subsequent rapid eye movement (REM) sleep and provided causal evidence that ABN activity during REM sleep is necessary for memory consolidation. Here, we describe the potential underlying mechanisms by highlighting distinct characteristics of ABNs including decoupled firing from local oscillations and ability to undergo profound synaptic remodeling in response to experience. We further di…

0301 basic medicinehippocampusMini Reviewtheta oscillationHippocampusEngramBiologyHippocampal formationOptogeneticslcsh:RC321-57103 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineFear conditioningoptogeneticslcsh:Neurosciences. Biological psychiatry. Neuropsychiatrysynaptic plasticityNeurogenesismemory consolidation030104 developmental biologyCellular NeuroscienceSynaptic plasticitycalcium-imagingMemory consolidationREM sleepadult-neurogenesisNeuroscience030217 neurology & neurosurgeryFrontiers in Cellular Neuroscience
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Hippocampal hyperexcitability is modulated by microtubule-active agent: evidence from in vivo and in vitro epilepsy models in the rat

2016

The involvement of microtubule dynamics on bioelectric activity of neurons and neurotransmission represents a fascinating target of research in the context of neural excitability. It has been reported that alteration of microtubule cytoskeleton can lead to profound modifications of neural functioning, with a putative impact on hyperexcitability phenomena. Altogether, in the present study we pointed at exploring the outcomes of modulating the degree of microtubule polymerization in two electrophysiological epileptiform activity in the rat hippocampus. To this aim, we used in vivo Maximal Dentate Activation (MDA) and in vitro hippocampal epileptiform bursting activity (HEBA) paradigms to asse…

0301 basic medicinehippocampusPaclitaxel.HippocampusContext (language use)BiologyNeurotransmissionHippocampal formationSettore BIO/09 - Fisiologialcsh:RC321-571Microtubule polymerization03 medical and health sciencesCellular and Molecular Neurosciencechemistry.chemical_compoundpaclitaxel0302 clinical medicineMicrotubulemedicinelcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal ResearchNeurotoxicitymedicine.diseaseelectrophysiologyNocodazole030104 developmental biologynocodazolechemistryepilepsyhippocampus epilepsy maximal dentate activation microtubule electrophysiology nocodazole paclitaxel.maximal dentate activationNeuroscience030217 neurology & neurosurgeryNeurosciencemicrotubule
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