Timing and Learning in In Vitro Cortical Networks
Timing and Learning in In Vitro Cortical Networks
批准号:
8535196
负责人:
DEAN V BUONOMANO
金额:
$36.55万
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-09-22 至 2015-02-28
关键词:
AccountingAction PotentialsAddressAnimal ModelAuditory systemAutistic DisorderBehaviorBehavioralBiological Neural NetworksBrainCell physiologyCellsClinicalCognitionCognition DisordersComplexComputational TechniqueConditioned StimulusDevelopmentDiseaseElectric StimulationGenesGoalsHumanImageIn VitroIncubatorsKnowledgeLearningLearning DisabilitiesMental RetardationMethodsMolecularMusNatureNeuronal PlasticityNeuronsOpticsPathologyPathway interactionsPatternPhysiologic pulsePreparationProcessPropertyRecurrenceResearchSchizophreniaSensorySliceStimulusStructureSumSynapsesSynaptic plasticitySystemTimeTissuesTrainingVisual system structureWorkYawninganalogcomputer studiesexperiencefeedingin vitro Modelin vivolearned behaviormillimeternervous system disorderneural circuitneuromechanismnoveloptogeneticspostnatalrelating to nervous systemresearch studyresponsespatiotemporaltool
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Cortical computations rely on the spatiotemporal patterns of action potentials created by the flow of activity through cortical networks. It is from
these patterns that the computations that underlie cognition emerge. But it is ultimately not genes or cells in isolation that underlie normal or abnormal cognition, but how these molecular and cellular processes govern the behavior of networks of neurons. Over the past decades significant progress has been made towards understanding critical synaptic and cellular mechanisms of neural plasticity, as well as in the description of experience-dependent changes in cortical processing using behavioral, in vivo, and imaging approaches. However, less progress has been made in bridging these levels of analyses; that is, there is an explanatory gap in the ability of synaptic and cellular properties to account for the emergent properties of neural networks. Indeed, the mechanisms by which the properties of millions of synapses and thousands of neurons are adjusted to produce computations through neural dynamics are not understood. It is known, however, that a cardinal feature of cortical function is that throughout postnatal development neural circuits are sculpted by experience. Furthermore, abnormalities in experience-dependent plasticity contribute to a number of neurological disorders, ranging from learning disabilities to mental retardation. The learning rules responsible for the emergence of experience-dependent plasticity are presumably not coherently engaged in traditional studies using in vitro preparations, since these normally 'develop' in the absence of any input structure-much like the visual or auditory system being deprived of patterned input. Our goal is to use cortical networks in vitro as a 'reduced preparation' to study the fundamental principles underlying the experience-dependent sculpting of cortical circuits. Towards this goal we have recently described what we consider to be the first neural analog of learning in vitro. Specificall, by chronically exposing slices in the incubator to patterned stimuli (mimicking sensory experience) we have shown that the neural dynamics reproduces the temporal features of the experienced stimuli. Here we will use novel electrical and optogenetic methods to further demonstrate that cortical circuits in vitro can "learn" temporal patterns, and elucidate the underlying neural mechanisms of timing and cortical computations. We suggest that a reduced preparation that provides an analog of learning and timing in vitro will ultimately prove to be required to study computations that truly emerge from the recurrent dynamics of neural networks. Additionally, by demonstrating that cortical networks are inherently capable of 'learning' temporal patterns, our experiments will address the long-standing question of the how the brain tells time. Furthermore, the ability to study network behavior and 'learning' in vitro should provide a means to study pathological circuit level computations using tissue from animal models of cognitive disorders.
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会议论文
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批准号:10841182
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财政年份:2016
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依托单位:
Abnormal network dynamics and "learning" in neural circuits from Fmr1-/- mice
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批准号:8445001
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项目类别:
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资助金额:$19.25万
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财政年份:2012
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负责人:DEAN V BUONOMANO
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依托单位:
Abnormal network dynamics and "learning" in neural circuits from Fmr1-/- mice
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批准号:8547831
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项目类别:
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资助金额:$22.18万
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财政年份:2012
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负责人:DEAN V BUONOMANO
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依托单位:
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批准号:8385396
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项目类别:
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资助金额:$7.7万
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财政年份:2012
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负责人:DEAN V BUONOMANO
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依托单位:
Learning temporal patterns: computational and experimental studies of timing
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批准号:8489369
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项目类别:
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资助金额:$7.43万
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财政年份:2012
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负责人:DEAN V BUONOMANO
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依托单位:
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批准号:7313129
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资助金额:$7.25万
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财政年份:2007
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负责人:DEAN V BUONOMANO
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依托单位:
Experience-dependent plasticity and dynamics in vitro
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批准号:8051761
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项目类别:
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资助金额:$30.59万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
Experience-dependent plasticity and dynamics in vitro
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批准号:7650442
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资助金额:$30.9万
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依托单位:
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批准号:7807986
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项目类别:
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资助金额:$30.9万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
Plasticity and the Decoding of Temporal Information
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批准号:6538971
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项目类别:
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资助金额:$21.76万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
Timing and Learning in In Vitro Cortical Networks
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批准号:8372781
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项目类别:
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资助金额:$36.45万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
Experience-dependent plasticity and dynamics in vitro
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批准号:7442173
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项目类别:
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资助金额:$30.9万
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财政年份:2001
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负责人:DEAN V BUONOMANO
-
依托单位:
Experience-dependent plasticity and dynamics in vitro
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批准号:7257587
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项目类别:
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资助金额:$33.59万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
Plasticity and the Decoding of Temporal Information
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批准号:6759442
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项目类别:
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资助金额:$18.45万
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财政年份:2001
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负责人:DEAN V BUONOMANO
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依托单位:
海外基金