Neural mechanisms of shape perception
Neural mechanisms of shape perception
批准号:
8527782
负责人:
Tatyana O. SHARPEE
金额:
$42.75万
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:
2009-09-01 至 2014-07-31
关键词:
AccountingAffectAfferent NeuronsAreaBerylliumCellsComplexElementsEnvironmentFrequenciesGoalsHealthImageIndiumKnowledgeMeasuresMethodsModelingNervous system structureNeuronsNeurosciencesNon-linear ModelsPathway interactionsPatternPerceptionPersonal SatisfactionPhysiologicalPlant RootsPositioning AttributeProbabilityProcessPropertyRadialRelative (related person)RotationShapesSignal TransductionSimulateSpecificityStagingStatistical MethodsStimulusStreamTestingTimeTranslationsV1 neuronV2 neuronV4 neuronVariantVisionVisualVisual AgnosiasVisual PathwaysVisual PerceptionWorkarea V1area V2area striatabaseeffective therapyextrastriateextrastriate visual corteximprovedinferotemporal cortexnervous system disorderneuromechanismobject recognitionpreferencereconstructionrelating to nervous systemresponsevisual processvisual processing
中文摘要
描述(申请人提供):视野是我们幸福的重要组成部分。然而,在视觉物体位置变化的情况下,允许其稳定感知的神经机制还没有被充分了解。特别是,我们目前缺乏关于神经反应如何在执行视觉对象识别的腹侧视觉通路中转换的具体知识。在这里,我们建议用自然刺激探测腹侧通路内视觉区域V2和V4中的神经元,以便系统地确定它们对刺激的选择性偏好。自然刺激提供了一种系统的方法来研究神经特征选择性,因为它们在视觉加工的所有阶段都会引起神经元的强烈反应,而且它们构成的刺激集不依赖于关于普遍存在的神经特征选择性的特定假设。我们最近开发了一种统计方法,可以描述用自然刺激探测的神经元的特征选择性,并考虑到神经反应的非线性方面。将这些方法推广到纹外视区神经元可以耐受刺激位置变化的事实(目标1),将允许系统地描述这些神经元在自然条件下的刺激偏好。每个神经元的反应将根据与神经反应最相关的两个局部刺激特征来表征。这将提供对视觉场景中被认为发生在V4响应中的曲线元素的选择性的直接测量(目标2)。最后,我们将测试神经特征选择性的特定参数,如方向和曲率,是否决定了对对象位置变化的容忍度增加的方向(目标3)。了解健康神经系统中形状感知的神经机制是开发有效治疗神经疾病的关键因素,例如视觉物体识别受损的感知失认。公共卫生相关性:这项研究将阐明负责形状感知的神经机制。在几种影响视力的神经疾病中,这些神经过程被破坏。了解健康神经系统中形状感知的神经机制是开发有效治疗视觉物体识别受损的神经疾病的关键因素。
英文摘要
Description (provided by applicant): Vision is an essential part of our well-being. Yet, the neural mechanisms allowing for the stable perception of visual objects under variations in their position are not sufficiently understood. In particular, we currently lack specific knowledge of how neural responses are transformed in the ventral visual pathway where visual object recognition is performed. Here we propose to probe neurons in visual areas V2 and V4 within the ventral pathway with natural stimuli in order to systematically determine their stimulus selectivity preferences. Natural stimuli offer a systematic way to study neural feature selectivity because they elicit robust responses from neurons at all stages of visual processing and because they constitute a stimulus set that is not tied to a particular hypothesis about prevalent neural feature selectivity. We have recently developed statistical methods that allow the characterization of the feature selectivity of neurons that are probed with natural stimuli, and which take into account nonlinear aspects of neural responses. Extending these methods to account for the fact that the responses of neurons in extrastriate visual areas can be tolerant to shifts in stimulus position (aim 1) will allow the systematic characterization of the stimulus preferences of these neurons under natural conditions. Responses of each neuron will be characterized according to the two localized stimulus features that are most relevant for the neural responses. This will provide a direct measure of the selectivity to curved elements in visual scenes thought to occur in V4 responses (aim 2). Finally, we will test whether specific parameters of neural feature selectivity, such as orientation and curvature, determines the directions of increased tolerance to shifts in object position (aim 3). Understanding the neural mechanisms of shape perception in the healthy nervous system is a key element in developing effective therapies for neurological disorders, such as apperceptive agnosia, where visual object recognition is impaired. PUBLIC HEALTH RELEVANCE: This study will elucidate the neural mechanisms responsible for shape perception. These neural processes are disrupted in several neurological disorders affecting vision. Understanding the neural mechanisms of shape perception in the healthy nervous system is a key element of developing effective therapies for neurological disorders where visual object recognition is impaired.
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Analyzing multicomponent receptive fields from neural responses to natural stimuli.
分析从神经反应到自然刺激的多组分接受场。
DOI:
10.3109/0954898x.2011.566303
发表时间:
2011
期刊:
Network (Bristol, England)
影响因子:
--
作者:
[Rowekamp RJ, Sharpee TO]
通讯作者:
Sharpee TO
DOI:
10.1371/journal.pcbi.1001111
发表时间:
2011-03
期刊:
PLoS computational biology
影响因子:
4.3
作者:
[Fitzgerald JD, Sincich LC, Sharpee TO]
通讯作者:
Sharpee TO
Adaptive switches in midbrain circuits.
中脑电路中的自适应开关。
DOI:
10.1016/j.neuron.2011.12.017
发表时间:
2012
期刊:
Neuron
影响因子:
16.2
作者:
[Sharpee,TatyanaO]
通讯作者:
Sharpee,TatyanaO
DOI:
10.3389/fnsyn.2016.00026
发表时间:
2016
期刊:
Frontiers in synaptic neuroscience
影响因子:
3.7
作者:
[Sharpee TO]
通讯作者:
Sharpee TO
DOI:
10.1016/j.neuron.2014.08.040
发表时间:
2014-09-17
期刊:
NEURON
影响因子:
16.2
作者:
[Sharpee, Tatyana O.]
通讯作者:
Sharpee, Tatyana O.
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项目类别:
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依托单位:
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