Tuning diversity in the functional microarchitecture of visual cortex
Tuning diversity in the functional microarchitecture of visual cortex
批准号:
7753108
负责人:
Ian Michael Nauhaus
金额:
$4.72万
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-08-16 至 2012-08-15
关键词:
AccountingAddressAffectAreaAttention Deficit DisorderAutistic DisorderBehaviorCalciumCellsClassificationCodeDataEpilepsyEquationImageIndividualInformation TheoryKnowledgeLocationMacacaMammalsMapsMeasurementMeasuresMicroscopicModelingNeuronsNeurosciencesPhotonsPopulationPropertyRecurrenceResolutionRodentRunningSamplingSchizophreniaSensorySeriesShapesSignal TransductionSodium ChlorideStimulusSurfaceTechniquesTestingVisualVisual CortexVisual FieldsWorkarea V1area striatabasecostdensitydesignextrastriate visual corteximprovedinsightnervous system disorderoptical imagingpreferencepublic health relevancereceptive fieldrelating to nervous systemresearch studyretinotopicsensory systemtwo-photon
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): In primary visual cortex (V1) of large mammals, intrinsic signal optical imaging has demonstrated continuous topographic maps of tuning preference. As expected for an efficient neural code, the maps of different stimulus parameters tend to overlap such that their contours run perpendicular to each other. However, the ultimate coding efficiency is dependent on the organization of both tuning preference and tuning shape at a fine spatial scale, which requires functional measurements with microscopic resolution. Here, we propose the use of two-photon imaging in macaque VI to characterize tuning diversity within the so-called hypercolumn and to measure its theoretical consequences on the overall population code. With two-photon imaging, we can measure tuning curves of multiple stimulus properties on a cell-by-cell basis across a patch of cortex that is hundreds of microns wide. Aim 1 is to investigate relationships between each cell's tuning shape and the neighboring population of tuning curves. The experiments and analyses will help us to better understand how the cortex performs local computations that affect the tuning properties of individual neurons. In Aim 2, we will test the impact of tuning diversity on information content within the hypercolumn. The analyses are directed toward finding possible benefits of having neurons embedded in continuous functional maps for transmitting information about the visual scene to downstream cortical areas. In Aim 3, we will examine a related issue. We hypothesize that the cortical hypercolumn is not perfect in its coverage of stimulus properties and that this is counterbalanced by changes in tuning bandwidth. Overall, the experiments and analyses in this proposal are designed to address fundamental questions in sensory systems neuroscience using a powerful new technique. PUBLIC HEALTH RELEVANCE: We expect to acquire knowledge on how cortical circuits integrate sensory input so that the information can be faithfully passed on to higher level areas to create normal behavior. Many neurological disorders such as autism, attention deficit disorder (ADD), epilepsy, and schizophrenia, are poorly understood. Knowledge about normal cortical function such as basic wiring rules and the organization of functionality in the cortex is fundamental to our understanding of abnormal cortical activity.
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Cone Integration in the visual cortex
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批准号:9761541
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项目类别:
-
资助金额:$37.94万
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财政年份:2018
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负责人:Ian Michael Nauhaus
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依托单位:
Tuning diversity in the functional microarchitecture of visual cortex
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批准号:7938620
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项目类别:
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资助金额:$5.05万
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财政年份:2009
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负责人:Ian Michael Nauhaus
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依托单位:
Tuning diversity in the functional microarchitecture of visual cortex
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批准号:8117496
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项目类别:
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资助金额:$5.3万
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财政年份:2009
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负责人:Ian Michael Nauhaus
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依托单位:
海外基金