Cortical processing of visual information during alert and non-alert brain states
Cortical processing of visual information during alert and non-alert brain states
批准号:
7526068
负责人:
HARVEY A SWADLOW
金额:
$38.02万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-08-01 至 2011-07-31
关键词:
AccidentsAddressAnesthesia proceduresAnimalsBehaviorBehavior DisordersBehavioralBiological ModelsBrainClinical ResearchCognitiveComputer SimulationComputer information processingContrast SensitivityDataDevelopmentDiseaseDisruptionDorsalEquilibriumEyeFire - disastersFrequenciesFutureHealthHumanInterneuronsLateral Geniculate BodyLeadLifeMeasuresMembraneMembrane PotentialsMental HealthMethodsModelingNatureNeuronsOryctolagus cuniculusOutputPathway interactionsPerceptionPerformancePlayPopulationPositioning AttributeProcessPropertyPsyche structurePublic HealthRangeRecurrenceResearchSensory ProcessSleepSourceStagingStimulusSynapsesSystemTestingThalamic structureV1 neuronVisionVisualVisual CortexVisual PerceptionWorkalertnessawakebasecorticogeniculatedensityexcitatory neuronfeedinginhibitory neuronlanganiteorientation selectivityresearch studyresponsevigilancevisual informationvisual processvisual processing
中文摘要
描述(申请人提供):这项拟议的工作旨在了解警觉和非警觉受试者的早期皮层视觉机制。由于控制眼睛位置的行为方法的发展,在理解警觉、专注的受试者视觉感知的中枢机制方面取得了很大的进展。然而,人们对警觉性减弱时起作用的皮质过程知之甚少。清醒、非清醒状态并不等同于麻醉或睡眠状态。在非警觉状态下,我们能够感知,但我们的感知能力不同。人们普遍认为,当我们不警觉时,就会发生事故,但早期丘脑或视觉皮质机制可能在多大程度上对此负责(与高级认知过程相反)是一个悬而未决的问题。这一提议依赖于一种非常适合解决这个问题的独特模型系统:清醒、不表现的兔子是一种动物,它的“内部精神生活”透明地在警觉和非警觉状态之间转换,而且它稳定的眼睛和胆小的天性使它成为这些实验的理想对象。这项拟议的研究将研究清醒受试者大脑状态的变化,以及与之相关的反应增益的戏剧性变化,如何影响视觉丘脑皮质和皮质内网络中发生的信息处理的多个顺序阶段。我们将研究视觉反应特性,研究机制,并开发一个生物学上真实的模型,说明大脑皮层输入层(第4层)的兴奋性和抑制性神经元如何对状态变化做出反应,并将研究状态修改的视觉信息如何通过视皮层的输出路径传递到后续处理站。这项工作将有助于更好地理解动态清醒大脑中视觉处理的皮质机制。从健康的角度来看,这些研究将对我们理解警觉/警觉缺陷如何影响视觉感知和表现产生重要影响,并将为未来人类心理健康和行为障碍的临床研究提供基础。公共卫生相关性目前的工作将对我们理解警觉/警觉缺陷如何影响视觉感知和表现产生重要影响。丘脑皮质系统内反应增强的中断与精神疾病有关,这些疾病涉及感觉处理和警觉水平的变化。这一建议将揭示视觉丘脑皮质系统内调节反应增益的机制,并通过这样做,将为未来人类心理健康和行为障碍的临床研究提供基础。
英文摘要
DESCRIPTION (provided by applicant): The proposed work aims to understand early cortical mechanisms of vision in alert and in non-alert subjects. Thanks to the development of behavioral methods for the control of eye position, great advances have been made in understanding central mechanisms of visual perception of alert, attentive subjects. However, there is little understanding of cortical processes that come into play when alertness wanes. The awake, non-alert state is not equivalent to anesthesia, or to sleep states. When non-alert, we are capable of perception, but our perceptual capacities differ. It is commonly believed that "accidents happen" when we are not alert, but the extent to which early thalamic or visual cortical mechanisms may be responsible for this (as opposed to higher cognitive processes) is an open question. This proposal relies on a unique model system that is very well-suited to address this question: the awake, non-behaving rabbit, an animal who's "inner mental life" transparently shifts between alert and non-alert states, and who's stable eyes and diffident nature make it an ideal subject for these experiments. The proposed research will examine how changes in the brain state of awake subjects, and the dramatic changes in response gain that are associated with them, influence the multiple, sequential stages of information processing that occur within the visual thalamocortical and intracortical network. We will examine visual response properties, examine mechanisms, and develop a biologically realistic model of how excitatory and inhibitory neurons of the input layer of the cortex (layer 4) respond to state-changes, and will examine how state-modified visual information is conveyed by output pathways of visual cortex to subsequent processing stations. This work will lead to a better understanding of cortical mechanisms of visual processing in a dynamic, awake brain. From a health perspective, these studies will have an important impact on our understanding of how alertness/vigilance deficits can impact visual perception and performance, and will provide the basis for future clinical studies of human mental health and behavioral disorders. PUBLIC HEALTH RELEVANCE The current work will have an important impact on our understanding of how alertness/vigilance deficits can impact visual perception and performance. A disruption in response gain within thalamocortical systems has been associated with mental diseases that involve changes in sensory processing and the level of vigilance. This proposal will reveal the mechanisms that modulate response gain within the visual thalamocortical system and, by doing so, it will provide the basis for future clinical studies of human mental health and behavioral disorders.
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会议论文
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