Search results for " and ocular physiology"

showing 10 items of 237 documents

The activation of NMDA receptors alters the structural dynamics of the spines of hippocampal interneurons

2017

N-Methyl-d-Aspartate receptors (NMDARs) are present in both pyramidal neurons and interneurons of the hippocampus. These receptors play a key role in the structural plasticity of excitatory neurons, but to date little is known about their influence on the remodeling of interneurons. Among hippocampal interneurons, the somatostatin expressing cells in the CA1 stratum oriens are of special interest because of their functional importance and structural characteristics: they display dendritic spines, which change their density in response to different stimuli. In order to understand the role of NMDAR activation on the structural dynamics of the spines of somatostatin expressing interneurons in …

0301 basic medicineDendritic spineDendritic SpinesHippocampusHippocampal formationBiologyHippocampusReceptors N-Methyl-D-Aspartate03 medical and health sciences0302 clinical medicineInterneuronsAnimalsReceptorCells CulturedMice KnockoutPyramidal Cellsmusculoskeletal neural and ocular physiologyGeneral NeuroscienceLong-term potentiationSpine030104 developmental biologySomatostatinnervous systemExcitatory postsynaptic potentialNMDA receptorSomatostatinNeuroscience030217 neurology & neurosurgeryNeuroscience Letters
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NMDA Receptors Regulate the Structural Plasticity of Spines and Axonal Boutons in Hippocampal Interneurons

2017

N-methyl-D-aspartate receptors (NMDARs) are present in both pyramidal neurons and interneurons of the hippocampus. These receptors play an important role in the adult structural plasticity of excitatory neurons, but their impact on the remodeling of interneurons is unknown. Among hippocampal interneurons, somatostatin-expressing cells located in the stratum oriens are of special interest because of their functional importance and structural characteristics: they display dendritic spines, which change density in response to different stimuli. In order to understand the role of NMDARs on the structural plasticity of these interneurons, we have injected acutely MK-801, an NMDAR antagonist, to …

0301 basic medicineDendritic spineorganotypic culturesEn passantHippocampusHippocampal formationBiologyspine dynamicslcsh:RC321-57103 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineReceptorlcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal ResearchMK-801interneuronsmusculoskeletal neural and ocular physiologyaxonal boutonsNMDARSpine (zoology)030104 developmental biologynervous systemExcitatory postsynaptic potentialNMDA receptorNeuroscience030217 neurology & neurosurgeryNeuroscienceFrontiers in Cellular Neuroscience
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Polysialic Acid Acute Depletion Induces Structural Plasticity in Interneurons and Impairs the Excitation/Inhibition Balance in Medial Prefrontal Cort…

2016

The structure and function of the medial prefrontal cortex (mPFC) is affected in several neuropsychiatric disorders, including schizophrenia and major depression. Recent studies suggest that imbalances between excitatory and inhibitory activity (E/I) may be responsible for this cortical dysfunction and, therefore, may underlie the core symptoms of these diseases. This E/I imbalance seems to be correlated with alterations in the plasticity of interneurons but there is still scarce information on the mechanisms that may link these phenomena. The polysialylated form of the neural cell adhesion molecule (PSA-NCAM) is a good candidate, because it modulates the neuronal plasticity of interneurons…

0301 basic medicineGenetically modified mousePSA-NCAMneuronal structural plasticityInhibitory postsynaptic potential03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineE/I balanceNeuroplasticitymedicinePrefrontal cortexOriginal ResearchPolysialic acidmusculoskeletal neural and ocular physiologymedicine.diseaseschizophreniamPFC cultures030104 developmental biologynervous systemSchizophreniaExcitatory postsynaptic potentialNeural cell adhesion moleculemajor depressionPsychologyNeuroscience030217 neurology & neurosurgeryNeuroscienceFrontiers in Cellular Neuroscience
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Chronic Stress Modulates Interneuronal Plasticity: Effects on PSA-NCAM and Perineuronal Nets in Cortical and Extracortical Regions.

2018

Chronic stress has an important impact on the adult brain. However, most of the knowledge on its effects is focused on principal neurons and less on inhibitory neurons. Consequently, recent reports have begun to describe stress-induced alterations in the structure, connectivity and neurochemistry of interneurons. Some of these changes appear to be mediated by certain molecules particularly associated to interneurons, such as the polysialylated form of the neural cell adhesion molecule (PSA-NCAM) and components of the perineuronal nets (PNN), specialized regions of the extracellular matrix. These plasticity-related molecules modulate interneuronal structure and connectivity, particularly of …

0301 basic medicineInterneuronPSA-NCAMhippocampusHippocampuslcsh:RC321-57103 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicinemedicineChronic stresslcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal Researchchronic stressreticular thalamic nucleusThalamic reticular nucleusbiologyhabenulaPerineuronal netmusculoskeletal neural and ocular physiology030104 developmental biologymedicine.anatomical_structureHabenulanervous systembiology.proteinperineuronal netNeuroscience030217 neurology & neurosurgeryParvalbuminmedial prefrontal cortexbasolateral amygdalaBasolateral amygdalaNeuroscienceFrontiers in cellular neuroscience
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Reduced interneuronal dendritic arborization in CA1 but not in CA3 region of mice subjected to chronic mild stress

2016

Abstract Introduction Chronic stress induces dendritic atrophy and decreases spine density in excitatory hippocampal neurons, although there is also ample evidence indicating that the GABAergic system is altered in the hippocampus after this aversive experience. Chronic stress causes dendritic remodeling both in excitatory neurons and interneurons in the medial prefrontal cortex and the amygdala. Methods In order to know whether it also has an impact on the structure and neurotransmission of hippocampal interneurons, we have analyzed the dendritic arborization, spine density, and the expression of markers of inhibitory synapses and plasticity in the hippocampus of mice submitted to 21 days …

0301 basic medicineMaleDendritic spineDendritic SpinesHippocampusPSA‐NCAMCell CountNeural Cell Adhesion Molecule L1Hippocampal formationBiologyNeurotransmissionAmygdalaHippocampus03 medical and health sciencesBehavioral NeuroscienceMice0302 clinical medicineInterneuronsNeuroplasticitymedicineAnimalsChronic stressCA1 Region HippocampalOriginal ResearchInhibitionNeuronal PlasticityGlutamate Decarboxylasemusculoskeletal neural and ocular physiologyfungiCA3 Region Hippocampalstructural plasticity030104 developmental biologymedicine.anatomical_structurenervous systemExcitatory postsynaptic potentialGAD67Sialic AcidsNeuroscience030217 neurology & neurosurgeryStress PsychologicalBrain and Behavior
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Odorant metabolizing enzymes in the peripheral olfactory process

2016

Odorant metabolizing enzymes in the peripheral olfactory process

0301 basic medicineMetabolizing enzymesanatomyChemistry[ SDV.AEN ] Life Sciences [q-bio]/Food and Nutritionmusculoskeletal neural and ocular physiologymammalOlfactionolfactoryCell biologyPeripheral03 medical and health sciences[SDV.AEN] Life Sciences [q-bio]/Food and Nutrition030104 developmental biology0302 clinical medicinemedicine.anatomical_structurecortexmedicineepitheliumOlfactory epitheliumProcess (anatomy)[SDV.AEN]Life Sciences [q-bio]/Food and Nutrition030217 neurology & neurosurgerypsychological phenomena and processes
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Effects of the Genetic Depletion of Polysialyltransferases on the Structure and Connectivity of Interneurons in the Adult Prefrontal Cortex

2019

Polysialic acid (polySia) is a complex sugar that in the nervous system appears mainly as a posttranslational modification of the neural cell adhesion molecule (NCAM). PolySia plays important roles during brain development, but also in its plasticity during adulthood. Two polysialyltransferases (polyST), ST8SIA2 and ST8SIA4, are involved in the synthesis and attachment of polySia. Both polyST are relevant for developmental migration of cortical interneurons and their establishment in the prefrontal cortex (PFC). In contrast, only ST8SIA4 appears to be important for the structural plasticity of a subpopulation of cortical interneurons in the adult. Interestingly, ST8SIA2 and NCAM are candida…

0301 basic medicineNervous systemInterneuronNeuroscience (miscellaneous)Synaptogenesisinterneuronlcsh:RC321-571lcsh:QM1-695polysialic acid (polysia)03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineBasket cellpolysialyltransferasesmedicinePrefrontal cortexlcsh:Neurosciences. Biological psychiatry. NeuropsychiatryOriginal Researchprefrontal cortexbiologyPolysialic acidmusculoskeletal neural and ocular physiologylcsh:Human anatomy030104 developmental biologymedicine.anatomical_structurenervous systembiology.proteinbasket cellNeural cell adhesion moleculeAnatomyNeurosciencedendritic arborization030217 neurology & neurosurgeryParvalbuminNeuroscienceFrontiers in Neuroanatomy
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Autoimmune polyglandular diseases.

2019

Autoimmune polyglandular diseases (APD) are defined as the presence of two autoimmune -induced endocrine failures. With respect to the significant morbidity and potential mortality of APD, the diagnostic objective is to detect APD at an early stage, with the advantage of less frequent complications, effective therapy and better prognosis. This requires that patients at risk be regularly screened for subclinical endocrinopathies prior to clinical manifestation. Regarding the time interval between manifestation of first and further endocrinopathies, regular and long-term follow-up is warranted. Quality of life and psychosocial status are poor in APD patients and involved relatives. Familial c…

0301 basic medicinePediatricsmedicine.medical_specialtyEndocrinology Diabetes and Metabolism030209 endocrinology & metabolismFamilial clusteringClinical manifestationEndocrine System DiseasesAutoimmune Diseases03 medical and health sciences0302 clinical medicineEndocrinologyQuality of lifeMedicineHumansIn patientStage (cooking)Polyendocrinopathies AutoimmuneSubclinical infectionPatient Care Teambusiness.industrymusculoskeletal neural and ocular physiologyIncidence030104 developmental biologycardiovascular systemQuality of LifeInterdisciplinary CommunicationHigh incidenceMorbiditybusinessPsychosocialcirculatory and respiratory physiologyBest practiceresearch. Clinical endocrinologymetabolism
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Differential glutamatergic and GABAergic contributions to the tetrad effects of Δ9-tetrahydrocannabinol revealed by cell-type-specific reconstitution…

2020

Δ9-tetrahydrocannabinol (THC), the major psychoactive ingredient of Cannabis sativa, exerts its actions through the endocannabinoid system by stimulation of the cannabinoid type 1 (CB1) receptor. The widespread distribution of this receptor in different neuronal cell types and the plethora of functions that is modulated by the endocannabinoid system explain the versatility of the effects of THC. However, the cell types involved in the different THC effects are still not fully known. Conditional CB1 receptor knock-out mice were previously used to identify CB1 receptor subpopulations that are "necessary" for the tetrad effects of a high dose of THC: hypothermia, hypolocomotion, catalepsy and …

0301 basic medicinePharmacologyCannabinoid receptormusculoskeletal neural and ocular physiologymedicine.medical_treatmentGlutamate receptorBiologyEndocannabinoid system03 medical and health sciencesCellular and Molecular NeuroscienceGlutamatergic030104 developmental biology0302 clinical medicinenervous systemmental disordersForebrainmedicineGABAergiclipids (amino acids peptides and proteins)CannabinoidReceptorNeurosciencepsychological phenomena and processes030217 neurology & neurosurgeryNeuropharmacology
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Modulation of information processing by AMPA receptor auxiliary subunits

2020

AMPA-type glutamate receptors (AMPARs) are key molecules of neuronal communication in our brain. The discovery of AMPAR auxiliary subunits, such as proteins of the TARP, CKAMP and CNIH families, fundamentally changed our understanding of how AMPAR function is regulated. Auxiliary subunits control almost all aspects of AMPAR function in the brain. They influence AMPAR assembly, composition, structure, trafficking, subcellular localization and gating. This influence has important implications for synapse function. In the present review, we first discuss how auxiliary subunits affect the strength of synapses by modulating number and localization of AMPARs in synapses as well as their glutamate…

0301 basic medicinePhysiology610 MedizinGlutamic AcidGatingAMPA receptorSynaptic TransmissionSynapse03 medical and health sciences0302 clinical medicineHomeostatic plasticity610 Medical sciencesHumansReceptors AMPAReceptorNeuronsNeuronal PlasticityChemistrymusculoskeletal neural and ocular physiologyGlutamate receptor030104 developmental biologyHebbian theorynervous systemSynapsesSynaptic plasticityNeuroscience030217 neurology & neurosurgery
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