2001
Contextual guidance of attention
Olson I, Chun M, Allison T. Contextual guidance of attention. Brain 2001, 124: 1417-1425. PMID: 11408336, DOI: 10.1093/brain/124.7.1417.Peer-Reviewed Original ResearchConceptsVisual cortexApical dendritesPyramidal cellsEarly visual areasModulation of activityStriate cortexVisual processingExtrastriate cortexVisual areasCortexNeurophysiological studiesFeedback modulationEvent-related potentialsEarly areasV1PatientsEarly activityLater stagesAttentive searchActivityBrain
2000
Visual Function and Brain Organization in Non-decussating Retinal–Fugal Fibre Syndrome
Victor J, Apkarian P, Hirsch J, Conte M, Packard M, Relkin N, Kim K, Shapley R. Visual Function and Brain Organization in Non-decussating Retinal–Fugal Fibre Syndrome. Cerebral Cortex 2000, 10: 2-22. PMID: 10639391, DOI: 10.1093/cercor/10.1.2.Peer-Reviewed Original ResearchMeSH KeywordsAdolescentBrain MappingContrast SensitivityElectroencephalographyFemaleFunctional LateralityHumansInfantMagnetic Resonance ImagingMotion PerceptionNeuronal PlasticityOptic ChiasmOptic Nerve DiseasesPhotic StimulationRetinaSyndromeTwins, DizygoticVisual CortexVisual PathwaysVisual PerceptionConceptsVisual functionIpsilateral primary visual cortexExtensive bilateral activationMagnetic resonance imaging studyNormal visual behaviorPrimary visual cortexResonance imaging studyFunctional magnetic resonance imaging studyPrestriate areasVisual namingOcular instabilityRetinal projectionsStriate cortexBilateral activationVisual cortexVisual pathwayImaging studiesContrast sensitivityContralateral representationElectrophysiological investigationsEye mapSimple visual stimuliFunctional neuroimagingPatientsBrain organization
1997
Physiological properties of inhibitory interneurons in cat striate cortex.
Azouz R, Gray C, Nowak L, McCormick D. Physiological properties of inhibitory interneurons in cat striate cortex. Cerebral Cortex 1997, 7: 534-545. PMID: 9276178, DOI: 10.1093/cercor/7.6.534.Peer-Reviewed Original ResearchConceptsBrief action potentialsReceptive field propertiesReceptive field typesSpike frequency adaptationSimple receptive fieldsAxonal arborizationIntracellular recordingsInhibitory interneuronsBasket cellsSpontaneous activityStriate cortexLayers IIAction potentialsFiring patternsResponsive cellsVisual stimulationFrequency adaptationDirection preferenceInterneuronsHigh rateReceptive fieldsCortexCatsCellsSpike trains
1996
Synaptogenesis in the Occipital Cortex of Macaque Monkey Devoid of Retinal Input From Early Embryonic Stages
Bourgeois J, Rakic P. Synaptogenesis in the Occipital Cortex of Macaque Monkey Devoid of Retinal Input From Early Embryonic Stages. European Journal Of Neuroscience 1996, 8: 942-950. PMID: 8743742, DOI: 10.1111/j.1460-9568.1996.tb01581.x.Peer-Reviewed Original ResearchConceptsAge-matched controlsStriate cortexDendritic spinesSynaptic contactsRetinal inputInfragranular cortical layersRatio of synapsesLateral geniculate nucleusPrimate striate cortexVolume of neuropilGroups of animalsEarly embryonic stagesAsymmetrical synapsesInfragranular layersSynaptic organizationGeniculate nucleusOccipital cortexNormal rangeOperated animalsSynaptic circuitsMacaque monkeysCortical layersEnucleated animalsSynaptic developmentDay 67
1991
Visual stimulation increases technetium-99m-HMPAO distribution in human visual cortex.
Woods SW, Hegeman IM, Zubal IG, Krystal JH, Koster K, Smith EO, Heninger GR, Hoffer PB. Visual stimulation increases technetium-99m-HMPAO distribution in human visual cortex. Journal Of Nuclear Medicine 1991, 32: 210-5. PMID: 1992020.Peer-Reviewed Original ResearchConceptsRegional cerebral blood flowRelative rCBF increasesVisual cortex relativeHexamethylpropylene amine oximeCerebral blood flowMBq 99mTc-HMPAOSingle photon emissionHuman visual cortexRCBF increasesAmine oximePhysiologic changesCortex relativeHealthy subjectsBlood flowStriate cortexHMPAO distributionWhole brainVisual cortexPhotic stimulationSeparate daysAbility of changesVisual stimulationStimulation conditionsImages of distributionsSignificant increase
1987
The role of striate cortex in the guidance of eye movements in the monkey
Segraves M, Goldberg M, Deng S, Bruce C, Ungerleider L, Mishkin M. The role of striate cortex in the guidance of eye movements in the monkey. Journal Of Neuroscience 1987, 7: 3040-3058. PMID: 3668615, PMCID: PMC6569180, DOI: 10.1523/jneurosci.07-10-03040.1987.Peer-Reviewed Original ResearchConceptsInitiation of saccadesCentral fixation pointLatency of saccadesSaccadic eye movementsStriate cortexSmooth pursuitEye velocityEye movementsImpaired fieldSmooth pursuit eye velocityFixation pointStep-ramp stimuliPursuit eye velocityIntact visual systemCortical ablationOculomotor abnormalitiesStimulus velocityFoveal targetAccurate saccadesStationary stimuliCortexSaccadesMonkeysVisual hemifieldLong latency
1986
Both striate cortex and superior colliculus contribute to visual properties of neurons in superior temporal polysensory area of macaque monkey
Bruce C, Desimone R, Gross C. Both striate cortex and superior colliculus contribute to visual properties of neurons in superior temporal polysensory area of macaque monkey. Journal Of Neurophysiology 1986, 55: 1057-1075. PMID: 3711967, DOI: 10.1152/jn.1986.55.5.1057.Peer-Reviewed Original ResearchConceptsSuperior temporal polysensory areaStriate lesionsIntact monkeysContralateral visual fieldSuperior colliculusHemifield contralateralStriate cortexUnilateral removalPolysensory areaGeniculostriate systemVisual responsesVisual hemifieldVisual fieldReceptive fieldsPrimate cerebral cortexVisual stimuliContralateral visual hemifieldStimulus motionBilateral receptive fieldsCerebral cortexIpsilateral hemifieldReceptive field sizeContralateralMacaque monkeysContralateral field
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