Molecular Codes for the Establishment of Functionally Segregated Dopaminergic Circuits
Molecular Codes for the Establishment of Functionally Segregated Dopaminergic Circuits
批准号:
10415208
负责人:
Hisashi Umemori
金额:
$80.48万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-07-01 至 2026-04-30
关键词:
AddressAdultAnatomyAnteriorAreaAttention deficit hyperactivity disorderAxonBehaviorBehavioralBiologicalBrainCell Adhesion MoleculesCellsCodeCorpus striatum structureDataDefectDevelopmentDiseaseDopamineDrug AddictionElectronsElectrophysiology (science)Emotional disorderEnvironmentEpilepsyEventExhibitsGoalsHistologicImageKnockout MiceLearningLinkMaintenanceMediatingMicroscopicMidbrain structureMolecularMood DisordersMotivationMovementMusNeuronsParkinson DiseasePatternPersonality DisordersPharmaceutical PreparationsPhysiologicalPhysiologyPlayPropertyProteinsRegulationRewardsRoleSchizophreniaSignal TransductionStimulusSynapsesTailTechniquesTestingTimeWorkautism spectrum disorderbaseconditional knockoutcritical perioddifferential expressiondopaminergic neuronexperienceflexibilityin vivointerdisciplinary approachmotivated behaviormotor symptommouse geneticsneuropsychiatric disordernovelnovel strategiespromoterprotocadherin 10protocadherin 19psychiatric symptomrelating to nervous systemresponseselective expressionskillssynaptogenesis
中文摘要
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英文摘要
PROJECT SUMMARY
Dopamine (DA) is important for many behaviors such as motivation, learning, and movement. Malfunction of
DA signaling is related to various psychiatric and motor symptoms, and DA-related drugs are commonly used
to treat schizophrenia, ADHD, OCD, autism, personality disorders, and mood disorders. Although DA regulates
various behaviors, it had been believed that the role of DA neurons is uniform: to signal "reward prediction
error" (RPE), the discrepancy between actual and predicted reward value. Recently however, we and others
showed that DA neurons projecting to different regions in the striatum exhibit distinct properties and serve
distinct functions. We found that DA in the anterior striatum (AS), central and posterior striatum (CS/PS), and
`tail' of the striatum (TS) signal canonical RPE, regulate the execution of skills, or signal threat prediction error,
respectively. Therefore, dopaminergic projections from the midbrain to the AS, CS/PS, and TS must be
differentially and precisely established for them to regulate our brain functions properly. However, the manner
and molecular mechanisms by which specific dopaminergic connections are established in the striatum are
unknown. To address this question, we have searched for synaptic, homophilic cell-adhesion molecules that
are differentially expressed in the AS, CS/PS, and TS. We identified that three Protocadherins (PCDHs),
PCDH17, PCDH10, and PCDH19, are selectively expressed in the AS, CS/PS, or TS, respectively, during
development and in adults. Furthermore, in the midbrain, PCDH17, 10, and 19 are expressed by DA neurons
projecting to the AS, CS/PS, or TS, respectively. Based on these expression patterns, we hypothesize that
PCDH17, 10, and 19 are the molecular codes for the AS-, CS/PS-, and TS-projecting DA neurons, respectively,
and that they play critical roles for the establishment of functionally segregated DA circuits. To test these ideas
we have generated novel mouse lines in which Cre is expressed under the Pcdh promoters, and constitutive
(null) and conditional knockout (KO) mice for each of the three PCDHs. Using these mouse lines, we propose
to: Aim 1: Determine whether PCDH17, 10, and 19 are the molecular codes for functionally segregated DA
neurons in adults. Aim 2: Investigate the effects of inactivation and activation of PCDH-expressing DA neurons
during various stages of development. Aim 3: Examine the role of PCDH proteins in the establishment of
specific DA connections. We will use interdisciplinary approaches with molecular/cell biological, histological,
mouse genetic, electron microscopic, electrophysiological, in vivo recording/imaging, and behavioral
techniques to address these aims. Our work will molecularly define functionally distinct DA circuits and reveal
how specific DA circuits establish in the mammalian brain. PCDH17/10/19 are implicated in different disorders:
PCDH17 in mood disorders and schizophrenia, PCDH10 in autism and OCD, and PCDH19 in epilepsy and
personality disorders. Thus, our study may also provide a link between specific DA circuits to certain disorders
and suggest novel strategies to treat these devastating disorders.
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Molecular Codes for the Establishment of Functionally Segregated Dopaminergic Circuits
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批准号:10296721
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财政年份:2021
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依托单位:
Cellular Imaging Core (CIC)
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批准号:10239467
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批准号:10681500
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资助金额:$141.6万
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依托单位:
Cellular Imaging Core (CIC)
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批准号:10545300
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资助金额:$141.6万
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Small Molecule Inhibitors of FGF22-Mediated Excitatory Synaptogenesis & Epilepsy
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财政年份:2012
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依托单位:
Small Molecule Inhibitors of FGF22-Mediated Excitatory Synaptogenesis & Epilepsy
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批准号:8792428
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Synapse Maturation by Activity-Dependent Ectodomain Shedding of SIRP
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依托单位:
Synapse Maturation by Activity-Dependent Ectodomain Shedding of SIRP
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资助金额:$13.39万
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依托单位:
Synapse Maturation by Activity-Dependent Ectodomain Shedding of SIRP
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资助金额:$11.58万
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Excitatory and inhibitory synaptogenesis by FGFs and their role in epilepsy
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依托单位:
Excitatory and inhibitory synaptogenesis by FGFs and their role in epilepsy
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项目类别:
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资助金额:$30.94万
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依托单位:
Activity-Dependent Synapse Refinement in the Memory Circuit in vivo
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资助金额:$36.95万
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财政年份:2010
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负责人:Hisashi Umemori
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依托单位:
Excitatory and inhibitory synaptogenesis by FGFs and their role in epilepsy
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项目类别:
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资助金额:$30.87万
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财政年份:2010
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负责人:Hisashi Umemori
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依托单位:
Excitatory and inhibitory synaptogenesis by FGFs and their role in epilepsy
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项目类别:
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资助金额:$31.5万
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财政年份:2010
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依托单位:
Activity-Dependent Synapse Refinement in the Memory Circuit in vivo
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资助金额:$38.49万
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依托单位:
Excitatory and inhibitory synaptogenesis by FGFs and their role in epilepsy
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资助金额:$37.3万
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海外基金