Modulatory control of basal ganglia microcircuitry in cognitive flexibility and psychiatric disease
Modulatory control of basal ganglia microcircuitry in cognitive flexibility and psychiatric disease
批准号:
9316716
负责人:
Scott Owen
金额:
$12.79万
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-07-15 至 2019-06-30
关键词:
AcetylcholineAddressAffectAmygdaloid structureAutistic DisorderAwardBasal GangliaBehaviorBehavioral AssayBrain regionChronicCognitiveConflict (Psychology)Corpus striatum structureDataDecision MakingDefectDiseaseDisease OutcomeDissectionDystoniaElectrophysiology (science)Experimental DesignsFoundationsFunctional disorderFundingGilles de la Tourette syndromeGoalsHippocampus (Brain)ImpairmentIndividualInterneuron functionInterneuronsLeadLearningLinkMeasuresMediatingMental disordersMotorMovement DisordersMuscarinic Acetylcholine ReceptorNeuronsObsessive-Compulsive DisorderOutcomeOutputPerformancePharmacologyPhysiologicalPhysiologyPrefrontal CortexPsychiatristReceptor SignalingResearchReversal LearningRodentRunningSignal PathwaySignal TransductionSiteSliceStructureSynapsesTask PerformancesTestingThalamic structureVentral StriatumWorkcell typecholinergiccognitive testingdesigner receptors exclusively activated by designer drugsexperimental studyfeedingflexibilityimprovedin vivoinsightnervous system disorderneuropsychiatric disorderneuroregulationnoveloptogeneticsprogramsreceptorresponsesequence learningskills
中文摘要
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英文摘要
ABSTRACT
The striatum is the primary input structure of the basal ganglia. While the striatum has been associated
with many neuropsychiatric and neurological disorders, the circuit mechanisms underlying these disorders are
largely unknown. Several of these disorders, including obsessive-compulsive disorder (OCD), Tourette's
syndrome, and dystonia, have been linked to defects in fast-spiking interneurons (FSIs), a class of GABAeric
interneurons in the striatum. My preliminary data established a connection between striatal FSIs, feed-forward
inhibitory microcircuits, and motor-sequence learning that is relevant to movement disorders. Through the
proposed research, I will investigate the mechanisms by which the striatal inhibitory microcircuitry contributes
to neuropsychiatric disease and cognitive flexibility. Ragozzino and colleagues have shown that acetylcholine
levels in the striatum are elevated during reversal learning tests of cognitive flexibility, a basal ganglia-related
form of learning that is impaired in neuropsychiatric disorders. They also showed that task performance relies
on muscarinic acetylcholine receptor (mAChR) signaling in the striatum. My preliminary results show that
striatal mAChR signaling predominantly suppresses FSI-mediated feed-forward inhibition, supporting the idea
that modulation of FSIs is critical for task performance. Indeed, striatal FSIs are active when rodents make
choices, especially in decision-making under conflict, and are therefore likely involved in cognitive flexibility.
Thus, I will combine slice physiology, behavior, and in vivo recordings to test the hypothesis that activation of
mAChRs suppresses FSI-mediated feed-forward inhibition to increase the variability of striatal network
responses for reversal learning and cognitive flexibility. With slice physiology, I will investigate the microcircuit,
neuromodulatory, and physiological mechanisms linking feed-forward inhibition to variability in network
responses. With a novel reversal-learning task that I developed, I will then test the importance of mAChR
signaling and striatal FSIs in cognitive flexibility. Then, with optogenetic manipulation and in vivo physiology, I
will answer the controversial question of whether FSIs inhibit medium spiny neurons (MSNs) in vivo. I will
directly test how this circuit affects the variability of network responses in vivo by manipulating FSIs and
cholinergic signaling while recording striatal network activity during reversal learning. These experiments will
expand my expertise in behavioral assays of cognitive flexibility and analysis of in vivo physiology data. I have
assembled an outstanding Advisory Council that includes world experts in basal ganglia physiology, dissection
of inhibitory microcircuitry, and neuromodulation. Two psychiatrists on this team will provide guidance on
disease relevance of the experimental design and results. The proposed work will allow me to gain the
necessary skills and preliminary data to establish and run a productive independent research program and
successfully compete for R01 funding to study striatal microcircuitry in cognitive flexibility and neuropsychiatric
disease.
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Modulatory control of basal ganglia microcircuitry in cognitive flexibility and psychiatric disease
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批准号:9163529
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项目类别:
-
资助金额:$12.79万
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财政年份:2016
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负责人:Scott Owen
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依托单位:
Inhibitory microcircuitry coordinates striatal function
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批准号:8718447
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项目类别:
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资助金额:$5.15万
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财政年份:2014
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负责人:Scott Owen
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依托单位:
Inhibitory microcircuitry coordinates striatal function
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批准号:8826591
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项目类别:
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资助金额:$5.42万
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财政年份:2014
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负责人:Scott Owen
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依托单位:
Role of L-Type Calcium Channels in Hippocampal Neuronal Network Activity
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批准号:7669376
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项目类别:
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资助金额:$3.22万
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财政年份:2008
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负责人:Scott Owen
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依托单位:
Role of L-Type Calcium Channels in Hippocampal Neuronal Network Activity
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批准号:7912840
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项目类别:
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资助金额:$3.27万
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财政年份:2008
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负责人:Scott Owen
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依托单位:
Role of L-Type Calcium Channels in Hippocampal Neuronal Network Activity
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批准号:7540114
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项目类别:
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资助金额:$3.47万
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财政年份:2008
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负责人:Scott Owen
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依托单位:
海外基金