Optogenetic dissection of dentate gyrus circuitry underlying anxiety
Optogenetic dissection of dentate gyrus circuitry underlying anxiety
批准号:
8893145
负责人:
Mazen A Kheirbek
金额:
$8.61万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-27 至 2016-01-31
关键词:
AddressAdultAffectiveAnimalsAnti-Anxiety AgentsAnxietyBasic ScienceBehaviorBehavioral MechanismsBiological AssayBrainBrain StemCationsCellsCharacteristicsChloride IonChloridesDevelopmentDevelopment PlansDiseaseDissectionDorsalElectrophysiology (science)ElementsEmotionalExhibitsGeneticGoalsHalorhodopsinsHeterogeneityHippocampus (Brain)In VitroInterneuronsLeadLearningLightMapsMedical StudentsMemoryMental DepressionMolecular BiologyMood DisordersMoodsMusNeuronsOpticsOutputPhysiologicalPhysiologyPopulationPopulation HeterogeneityPositioning AttributeProcessProductionPumpRecruitment ActivityRelative (related person)ResearchResearch Project GrantsRetrievalRoleSpecificityStem cellsStructureTamoxifenTechniquesTestingTrainingTranslational Researchanxiety-like behaviorcareercareer developmentcohortconditioned feardentate gyrusemotional behaviorfeedinggraduate studentgranule cellhippocampal pyramidal neuronin vivoinsightlight gatedmorris water mazenestin proteinneural circuitneuroregulationnoveloptogeneticspatch clampselective expressionskillsspatial memorysuccesstranslational neuroscienceundergraduate student
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): My career goal is to train graduate, undergraduate, and medical students, and independently lead a research group that investigates the neural circuitry underlying motivated and mood-related behavior to eventually use this insight for translational research. To achieve this goal, I am proposing a project that provides me with significant training by examining how the dentate gyrus (DG) circuit contributes to anxiety-like behavior. Specifically, I will examine whether the developmental origin or regional position of DG granule cells (GCs) dictates their contribution to emotional behavior. To test this, I will use
optogenetic techniques to control the activity of mature and adult-born granule cells in the dorsal
or ventral DG to determine their relative contribution to anxiety-like behavior. My primary expertise is in mouse behavior, molecular biology and mouse genetics. My career development plan will expand on this by providing me essential training in patch clamp electrophysiology, in vivo electrophysiology, and in vivo optogenetic neuromodulation during behavior. As my career goal is to lead a research group examining the circuits that underlie affective behavior, and how they go wrong in disease states, these skills are not only required, but also essential to my success in leading a well-rounded, independent research career. In addition, as my previous focus has been on basic research, I have proposed to expand my training in translational neuroscience, so that I may apply my research to successfully collaborate with clinicians. Research Project Identifying the circuit mechanisms that underlie anxiety and depression is of utmost importance for treating psychiatric illness. In this proposal, I will examine how the dentate gyrus (DG) contributes to anxiety-like behavior. While classically studied for its role in
spatial learning, there is significant support for a role for the DG in emotional behavior, but the
mechanism for this remains unknown. A potential mechanism derives from the observation that emotional state can influence the production of new granule cells (GCs) from stem cells located in the adult DG. In addition, recent studies suggest the hippocampus is functionally segregated along its dorsal-ventral axis, influencing anxiety-like behavior through its ventral pole. This would suggest that GCs represent a functionally heterogeneous pool of neurons determined locally by their developmental origin and regionally by their position along the dorsal-ventral axi of the hippocampus. To test these possibilities, we have selectively expressed the blue light activated cation channel channelrhodopsin-2 (ChR2) and the yellow light activated chloride pump halorhodopsin (eNpHR3.0) in populations of mature and adult-born GCs. Using local circuit mapping in vitro, we will test the hypothesis that adult-born GCs modulate DG output. In vivo, we will test the hypothesis that optical stimulation or inhibition of GCs in the ventral DG preferentially influences anxiety-like behavior, while the dorsal DG impacts spatial learning. Finally, we will dissect the preferential contribution of adult-born GCs to anxiety-like behavior.
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会议论文
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资助金额:$54.47万
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Hippocampal modulation of subcortical circuits in the control of emotional behavior
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财政年份:2016
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Hippocampal modulation of subcortical circuits in the control of emotional behavior
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Hippocampal modulation of subcortical circuits in the control of emotional behavior
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资助金额:$39.63万
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财政年份:2016
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依托单位:
Optogenetic dissection of dentate gyrus circuitry underlying anxiety
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Modulating plasticity in adult-born neurons of the dentate gyrus
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资助金额:$5.3万
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Adenylyl cyclase and plasticity in the striatum.
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资助金额:$3.47万
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财政年份:2006
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负责人:Mazen A Kheirbek
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依托单位:
Adenylyl cyclase and plasticity in the striatum.
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依托单位:
海外基金