Search results for "sensory cortex"

showing 10 items of 113 documents

Brain circuit-gene expression relationships and neuroplasticity of multisensory cortices in blind children.

2017

Sensory deprivation reorganizes neurocircuits in the human brain. The biological basis of such neuroplastic adaptations remains elusive. In this study, we applied two complementary graph theory-based functional connectivity analyses, one to evaluate whole-brain functional connectivity relationships and the second to specifically delineate distributed network connectivity profiles downstream of primary sensory cortices, to investigate neural reorganization in blind children compared with sighted controls. We also examined the relationship between connectivity changes and neuroplasticity-related gene expression profiles in the cerebral cortex. We observed that multisensory integration areas e…

0301 basic medicineMaleneuroplasticitySensory systemNerve Tissue ProteinsCREBBlindness03 medical and health sciences0302 clinical medicinechildrenNeuroplasticitymedicineGene familyHumansSensory deprivationChildMultidisciplinaryNeuronal Plasticitybiologyfunctional connectivityMultisensory integrationHuman brainSomatosensory CortexBiological Sciences030104 developmental biologymedicine.anatomical_structureGene Expression RegulationCerebral cortexbiology.proteinCREB familyFemaleNerve NetPsychologyNeuroscience030217 neurology & neurosurgery
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Assessing the Impact of Single-Cell Stimulation on Local Networks in Rat Barrel Cortex—A Feasibility Study

2019

In contrast to the long-standing notion that the role of individual neurons in population activity is vanishingly small, recent studies have shown that electrical activation of only a single cortical neuron can have measurable effects on global brain state, movement, and perception. Although highly important for understanding how neuronal activity in cortex is orchestrated, the cellular and network mechanisms underlying this phenomenon are unresolved. Here, we first briefly review the current state of knowledge regarding the phenomenon of single-cell induced network modulation and discuss possible underpinnings. Secondly, we show proof of principle for an experimental approach to elucidate …

0301 basic medicinePatch-Clamp TechniquesComputer scienceCortical neuronPopulationAction PotentialsStimulationjuxtacellularCatalysisArticleInorganic ChemistryRats Sprague-Dawleylcsh:Chemistry03 medical and health sciences0302 clinical medicineCortex (anatomy)medicinePremovement neuronal activityAnimalsCell stimulationRats Long-EvansPhysical and Theoretical ChemistryRats WistareducationMolecular Biologylcsh:QH301-705.5SpectroscopyNeuronseducation.field_of_studyOrganic ChemistrynanostimulationGeneral MedicineSomatosensory CortexBarrel cortexComputer Science ApplicationsRatsElectrophysiologyin vivo030104 developmental biologymedicine.anatomical_structurelcsh:Biology (General)lcsh:QD1-999Feasibility Studiesbarrel cortexNeuronSingle-Cell AnalysisNeuroscience030217 neurology & neurosurgeryInternational Journal of Molecular Sciences
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Acute Cortical Transhemispheric Diaschisis after Unilateral Traumatic Brain Injury

2017

Focal neocortical brain injuries lead to functional alterations, which can spread beyond lesion-neighboring brain areas. The undamaged hemisphere and its associated disturbances after a unilateral lesion, so-called transhemispheric diaschisis, have been progressively disclosed over the last decades; they are strongly involved in the pathophysiology and, potentially, recovery of brain injuries. Understanding the temporal dynamics of these transhemispheric functional changes is crucial to decipher the role of the undamaged cortex in the processes of functional reorganization at different stages post-lesion. In this regard, little is known about the acute-subacute processes after 24-48 h in th…

0301 basic medicinePatch-Clamp TechniquesTraumatic brain injurySomatosensory system03 medical and health sciences0302 clinical medicineCortex (anatomy)Unilateral lesionBrain Injuries TraumaticNeuroplasticitymedicineAnimalsDiaschisisNeuronal PlasticityMotor CortexElectroencephalographySomatosensory Cortexmedicine.diseaseMice Inbred C57BLDisease Models AnimalElectrophysiology030104 developmental biologymedicine.anatomical_structureBrain HemisphereNeurology (clinical)PsychologyNeuroscience030217 neurology & neurosurgeryJournal of Neurotrauma
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Neuronal Activity Patterns in the Developing Barrel Cortex

2017

International audience; The developing barrel cortex reveals a rich repertoire of neuronal activity patterns, which have been also found in other sensory neocortical areas and in other species including the somatosensory cortex of preterm human infants. The earliest stage is characterized by asyn-chronous, sparse single-cell firing at low frequencies. During the second stage neurons show correlated firing, which is initially mediated by electrical synapses and subsequently transforms into network bursts depending on chemical synapses. Activity patterns during this second stage are synchronous plateau assemblies, delta waves, spindle bursts and early gamma oscillations (EGOs). In newborn rod…

0301 basic medicineRodentiaSensory systemReviewDevelopmentBiologySomatosensory systemRodentsGABA03 medical and health sciences0302 clinical medicineAnimalsPremovement neuronal activity[SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Cortical SynchronizationNeuronsSensory-evoked activitySensory stimulation therapyGeneral NeuroscienceSomatosensory CortexBarrel cortexBrain WavesSpontaneous activityDelta wave030104 developmental biologyElectrical Synapses[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC]Neuroscience030217 neurology & neurosurgeryCortical SynchronizationNeuroscience
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Development of the whisker-to-barrel cortex system.

2018

This review provides an overview on the development of the rodent whisker-to-barrel cortex system from late embryonic stage to the end of the first postnatal month. During this period the system shows a remarkable transition from a mostly genetic-molecular driven generation of crude connectivity, providing the template for activity-dependent structural and functional maturation and plasticity, to the manifestation of a complex behavioral repertoire including social interactions. Spontaneous and sensory-evoked activity is present in neonatal barrel cortex and control the generation of the cortical architecture. Half a century after its first description by Woolsey and van der Loos the whiske…

0301 basic medicineanimal structuresSensory processingBehavior AnimalGeneral NeuroscienceRepertoiremedicine.medical_treatmentCortical architectureEmbryonic StageSomatosensory CortexBarrel cortexBiology03 medical and health sciences030104 developmental biology0302 clinical medicinemedicine.anatomical_structureTouch PerceptionCortex (anatomy)VibrissaemedicineAnimalsNerve NetNeuroscience030217 neurology & neurosurgeryCurrent opinion in neurobiology
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Barrel cortex: What is it good for?

2017

The rodent whisker system, with barrel cortex as its most prominent structure, has evolved into a powerful model system to study sensory processing. However, despite the vast amount of data collected on barrel cortex neural activity patterns, as well as its circuitry and plasticity, the precise behavioral and cognitive operations for which this structure is needed are still elusive. Proposed functions of barrel cortex include detection, discrimination, coordination of whisker movements during exploratory locomotion or active touch, and associative learning. Departing from a definition of what exactly constitutes a function and how the involvement of a brain area in a specific task can be es…

0301 basic medicineanimal structuresSensory processingmedicine.medical_treatmentBarrel (horology)Somatosensory system03 medical and health sciencesNeural activityMice0302 clinical medicineCognitionmedicineAnimalsBehavior AnimalGeneral NeuroscienceCognitionSomatosensory CortexBarrel cortexAssociative learningRats030104 developmental biologyVibrissaePsychologyNeuroscience030217 neurology & neurosurgeryCognitive loadNeuroscience
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Nitric oxide/cGMP signaling via guanylyl cyclase isoform 1 modulates glutamate and GABA release in somatosensory cortex of mice

2017

Abstract In hippocampus, two guanylyl cyclases (NO-GC1 and NO-GC2) are involved in the transduction of the effects of nitric oxide (NO) on synaptic transmission. However, the respective roles of the NO-GC isoforms on synaptic transmission are less clear in other regions of the brain. In the present study, we used knock-out mice deficient for the NO-GC1 isoform (NO-GC1 KO) to analyze its role in the glutamatergic and GABAergic neurotransmission at pyramidal neurons in layers II/III of somatosensory cortex. NO-GC1 KO slices revealed reduced frequencies of miniature excitatory- and inhibitory-postsynaptic currents, increased paired-pulse ratios and decreased input–output curves of evoked signa…

0301 basic medicineendocrine systemgenetic structuresGlutamic AcidReceptors Cell SurfaceAMPA receptorBiologyNeurotransmissionNitric OxideInhibitory postsynaptic potentialHippocampusSynaptic Transmission03 medical and health sciencesGlutamatergicSoluble Guanylyl Cyclase0302 clinical medicineAnimalsCyclic GMPgamma-Aminobutyric AcidMice KnockoutGeneral NeuroscienceGlutamate receptorSomatosensory CortexCell biology030104 developmental biologyGuanylate CyclaseSynapsesExcitatory postsynaptic potentialNMDA receptorGABAergicNeuroscience030217 neurology & neurosurgeryNeuroscience
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Altered synaptic phospholipid signaling in PRG-1 deficient mice induces exploratory behavior and motor hyperactivity resembling psychiatric disorders.

2017

Abstract Plasticity related gene 1 (PRG-1) is a neuron specific membrane protein located at the postsynaptic density of glutamatergic synapses. PRG-1 modulates signaling pathways of phosphorylated lipid substrates such as lysophosphatidic acid (LPA). Deletion of PRG-1 increases presynaptic glutamate release probability leading to neuronal over-excitation. However, due to its cortical expression, PRG-1 deficiency leading to increased glutamatergic transmission is supposed to also affect motor pathways. We therefore analyzed the effects of PRG-1 function on exploratory and motor behavior using homozygous PRG-1 knockout (PRG-1−/−) mice and PRG-1/LPA2–receptor double knockout (PRG-1−/−/LPA2−/−)…

0301 basic medicinemedicine.medical_specialtyGlutamic AcidNerve Tissue ProteinsBiologyHyperkinesisHippocampusOpen field03 medical and health sciencesBehavioral NeuroscienceGlutamatergicchemistry.chemical_compoundMice0302 clinical medicineLysophosphatidic acidmedicineAnimalsReceptors Lysophosphatidic AcidPsychiatryMice KnockoutNeuronsMental DisordersGlutamate receptorSomatosensory CortexMice Inbred C57BL030104 developmental biologymedicine.anatomical_structurechemistrySynapsesExploratory BehaviorGABAergicCalmodulin-Binding ProteinsFemaleNeuronSignal transductionLysophospholipidsPostsynaptic density030217 neurology & neurosurgerySignal TransductionBehavioural brain research
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Modulation of Neocortical Development by Early Neuronal Activity: Physiology and Pathophysiology.

2017

Animal and human studies revealed that patterned neuronal activity is an inherent feature of developing nervous systems. This review summarizes our current knowledge about the mechanisms generating early electrical activity patterns and their impact on structural and functional development of the cerebral cortex. All neocortical areas display distinct spontaneous and sensory-driven neuronal activity patterns already at early phases of development. At embryonic stages, intermittent spontaneous activity is synchronized within small neuronal networks, becoming more complex with further development. This transition is accompanied by a gradual shift from electrical to chemical synaptic transmiss…

0301 basic medicinesomatosensory cortexReviewBiologylcsh:RC321-57103 medical and health sciencesCellular and Molecular Neurosciencechemistry.chemical_compound0302 clinical medicineSubplatemedicinePremovement neuronal activityhumanddc:610Neurotransmitterlcsh:Neurosciences. Biological psychiatry. Neuropsychiatrydevelopmentspontaneous activityNeocortexGlutamate receptorrodentChemical synaptic transmission030104 developmental biologymedicine.anatomical_structureElectrical SynapseschemistryCerebral cortexsubplatecerebral cortexNeuroscience030217 neurology & neurosurgeryNeuroscience
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Layer-Specific Refinement of Sensory Coding in Developing Mouse Barrel Cortex

2017

Rodent rhythmic whisking behavior matures during a critical period around 2 weeks after birth. The functional adaptations of neocortical circuitry during this developmental period remain poorly understood. Here, we characterized stimulus-evoked neuronal activity across all layers of mouse barrel cortex before, during, and after the onset of whisking behavior. Employing multi-electrode recordings and 2-photon calcium imaging in anesthetized mice, we tested responses to rostro-caudal whisker deflections, axial "tapping" stimuli, and their combination from postnatal day 10 (P10) to P28. Within this period, whisker-evoked activity of neurons displayed a general decrease in layer 2/3 (L2/3) and …

2805 Cognitive NeuroscienceMale0301 basic medicineNeurogenesisCognitive NeurosciencePeriod (gene)2804 Cellular and Molecular Neuroscience610 Medicine & healthSensory systemStimulationBiologySomatosensory system03 medical and health sciencesCellular and Molecular Neuroscience0302 clinical medicineCalcium imagingPhysical StimulationAnimalsPremovement neuronal activityNeuronsAfferent PathwaysNeuronal Plasticity10242 Brain Research InstituteWhisking in animalsSomatosensory CortexBarrel cortexMice Inbred C57BL030104 developmental biologyAnimals NewbornVibrissae570 Life sciences; biologyFemaleSensory DeprivationNeuroscience030217 neurology & neurosurgery
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