Heroin-Induced genomic regulation of Ventral Pallidum neuron subtypes
Heroin-Induced genomic regulation of Ventral Pallidum neuron subtypes
批准号:
10057036
负责人:
Seth Abrams Ament
金额:
$68.23万
依托单位国家:
美国
项目类别:
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-08-01 至 2025-05-31
关键词:
ATAC-seqAbstinenceAcuteAnimal ModelApplications GrantsBRAIN initiativeBackBehaviorBehavioralBiological AssayBrainCRISPR interferenceCell NucleusCellsChromatinClustered Regularly Interspaced Short Palindromic RepeatsCollectionCuesDataData SetDependenceDependovirusDorsalDrug AddictionEpidemicEpigenetic ProcessFoundationsFrequenciesFunctional disorderFundingGene ExpressionGenesGeneticGenetic TranscriptionGenomicsGlobus PallidusGoalsHabenulaHealthHeroinHeroin DependenceHourIndividualKnowledgeLabelLateralLeadLifeLinkMedialMediatingMessenger RNAModelingMolecularNeurobiologyNeuronsNeurosciencesNucleus AccumbensOpiate AddictionOpioidOutputOverdosePharmaceutical PreparationsProcessProteinsRattusRegulationRegulator GenesRelapseResearchResearch PersonnelRewardsRoleSelf AdministrationThalamic structureTherapeuticTimeTissuesTrainingTranscription ProcessVentral Tegmental Areaaddictioncell typechromatin immunoprecipitationcombatdopaminergic neurondrug abstinencedrug cravingdrug seeking behaviorepigenomeepigenomicsfallsgenome-widegenomic locusgenomic profilesgenomic toolsinsightmolecular subtypesmultimodal datamultiple omicsnerve supplynetwork modelsnovelopioid abuseopioid useopioid use disorderpsychostimulanttooltranscriptometranscriptome sequencingtranscriptomicsweb portal
中文摘要
项目总结/文摘
英文摘要
PROJECT SUMMARY/ABSTRACT
Opioid use, dependence, and addiction have dramatically increased to epidemic proportions in recent years,
leading to substantial financial and societal health burdens, as well as an increasing number of overdoses. To
combat this epidemic, it is imperative that we understand the neurobiological underpinnings that lead to opioid
use disorder. We must identify disrupted neuron subtypes in the brain in opioid use disorders and dysregulated
molecules within these neurons that underlie cellular, circuit, and ultimately behavioral adaptations. Use of rat
drug self-administration (SA) and relapse assays, which are considered the best available animal models of
addiction, will allow a more complete understanding of the molecular mechanisms underlying the genomic,
epigenetic, and transcriptional-induced cellular plasticity that drives the long-lasting drug seeking and propensity
for heroin relapse.
We will perform genome-wide transcriptome and open-chromatin profiling of ventral pallidum (VP) projection
neuron subtypes in rat heroin SA, both acutely following drug cessation and after prolonged periods of drug
abstinence. Here, we focus on the VP as a critical node in the brain’s reward circuit. Our studies will profile VP
neurons that project to the nucleus accumbens, ventral tegmental area, medial dorsal thalamus, and lateral
habenula. We will then integrate the transcriptomic and epigenomic data with complementary transcriptomic and
epigenomic datasets, including multimodal data from the BRAIN Initiative describing cell type diversity in the VP
and its output circuits. We will reconstruct cell type-specific gene co-expression and open chromatin networks
and identify hub genes predicted to have central roles in immediate and prolonged abstinence from heroin, which
could underlie subsequent relapse behavior. This collection of datasets and models will be made available
through a biologist-friendly web portal based on our BRAIN Initiative-funded Neuroscience Multi-Omic Analytics
platform.
Using the data generated we will develop rat gene loci-specific CRISPR epigenomic targeting tools to determine
the functional significance of key hub genes that are regulated in VP projection neuron subtypes. To achieve this
goal, we will employ rat models of relapse in combination with advanced CRISPRa and CRISPRi AAV tools to
enhance or reduce transcription of key hub genes during heroin SA or abstinence from heroin SA followed by
cue-induced reinstatement. The studies proposed in this grant application will, for the first time, identify the
distinct heroin-induced gene network adaptations occurring temporally in a cell-type-specific manner within a
novel neurobiological circuit.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
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Heroin-Induced genomic regulation of Ventral Pallidum neuron subtypes
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批准号:10210378
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项目类别:
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资助金额:$66.76万
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依托单位:
Heroin-Induced genomic regulation of Ventral Pallidum neuron subtypes
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批准号:10404982
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项目类别:
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资助金额:$59.33万
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依托单位:
Heroin-Induced genomic regulation of Ventral Pallidum neuron subtypes
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批准号:10646307
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资助金额:$59.06万
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依托单位:
海外基金