DEVELOPMENT OF A NOVEL APPROACH TO STUDY ALTERNATIVE TRANSLATION IN THE CNS
DEVELOPMENT OF A NOVEL APPROACH TO STUDY ALTERNATIVE TRANSLATION IN THE CNS
批准号:
8787911
负责人:
JOSEPH D DOUGHERTY
金额:
$19.06万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-07-01 至 2016-06-30
关键词:
Affinity ChromatographyAreaAstrocytesBindingBrainCell Culture TechniquesCellsCellular StressCentral Nervous System DiseasesComplexDNADataDevelopmentDopaminergic CellDrug abuseExposure toFutureGene Expression RegulationGrowthHarringtonineHeterogeneityHigh-Throughput Nucleotide SequencingHumanIn VitroInitiator CodonMeasurementMessenger RNAMethodsMidbrain structureMusNervous system structureNeuraxisNeuronsOligodendrogliaOpen Reading FramesPathway interactionsPopulationProcessProteinsProtocols documentationRNARNA BindingReagentRegulationReporterResearch PersonnelRewardsRibosomesSaccharomycetalesSiteStarvationStem cellsStimulusSubstance of AbuseSystemTechnologyTestingTissuesTranscriptTranslatingTranslation InitiationTranslationsYeastsaddictioncell typecomparativedopaminergic neurondrug rewardembryonic stem cellexperiencegenome-widein vivoinnovationnovelnovel strategiesoptogeneticspreventpublic health relevancetooltool developmenttranscriptome sequencing
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): There is emerging evidence from in vitro systems that a remarkable number of mRNAs contain alternative translation initiation sites, further amplifying the number and diversity of protein products that can be generated from a single RNA molecule. This new diversity can be studied in a high throughput and systematic manner in cell culture using newly developed methods for "ribosome footprinting." Here, we propose to bring these new methods into the study of the nervous system using our tools and expertise in capturing ribosomes from genetically defined cell populations in the mouse brain. Thus, Aim 1 is to determine if alternative translation is a common feature of the complex mammalian brain, and how it is regulated across distinct cell types. Furthermore, in yeast and other in vitro systems, alternative translation is regulated by cellular stress and other manipulations. Our second aim is to determine whether neuronal activity can regulate alternative translation in vivo, using a newly developed dual-reporter "CHOP-TRAP" mouse that permits parallel optogenetic manipulation and ribosome capture from targeted cell populations, in this case midbrain Dopaminergic neurons. It is our hope that the development of tools to characterize alternative translation in cel populations relevant to reward and addiction will permit future in-depth analysis of this process in CNS disorder.
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