The Role of Long Non-coding RNAs in Lineage Restriction of Neural Stem Cells
The Role of Long Non-coding RNAs in Lineage Restriction of Neural Stem Cells
批准号:
8652175
负责人:
Alexander Daniel Ramos
金额:
$2.69万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-30 至 2014-06-13
关键词:
AdultAntibodiesBindingBioinformaticsBrainBrain regionCatalogingCatalogsCellsChIP-seqChromatinChromatin Remodeling FactorCodeComplexCultured CellsDataDiseaseEnhancersEnzymesEpigenetic ProcessFibroblastsFunctional RNAGene ExpressionGene Expression ProfileGenesGenomeGenomicsGoalsHistonesHomeoboxImmunoprecipitationIn VitroInjection of therapeutic agentLeadMalignant NeoplasmsModificationMusNeurogliaNeuronsPopulationProteinsRNARecruitment ActivityRoleSystemTechnologyTestingTissuesTranscriptUntranslated RNAVentricularWorkcell typechromatin modificationembryonic stem cellflexibilitygenome-widein vivomammalian genomemature animalmembernerve stem cellnervous system developmentneurogenesisolfactory bulbpluripotencyprogramspromoterpublic health relevancereconstructionrelating to nervous systemresearch studyscaffoldsmall hairpin RNAstem cell biologystem cellstranscription factortranscriptome sequencing
中文摘要
描述(由申请人提供):转录组分析表明,70%-90%的基因组被转录,但令人惊讶的是,只有1- 2%的基因组编码蛋白质。最近的研究揭示了一类新的非编码转录物,称为长链非编码rna (lncRNAs)。已知这些lncrna的主要功能是在全基因组范围内特异性地引导染色质修饰子到达它们的目标。虽然生物信息学的进步已经导致培养细胞中lncrna的广泛编目和功能分析,但体内数据严重缺乏。小鼠大脑的心室下区(SVZ)是研究lncrna在体内作用的理想系统。SVZ含有多能神经干细胞(SVZ- nscs),能够产生局部胶质细胞以及嗅球(OB)的终末分化神经元。干细胞向神经谱系终末分化细胞的这种命运限制,已知依赖于染色质状态的改变和关键转录因子的作用。因此,SVZ中的神经谱系可用于询问染色质状态,转录程序和lncrna的相互作用。这项工作的主要目的是表征神经源性lncRNA在体内的表达和功能。为此,我们对从SVZ和OB组织中分离的RNA进行了RNA测序和转录组重建。这提供了SVZ和OB中表达的所有lncrna的综合注释,并鉴定了那些在神经源性脑区域特异性富集的转录本。我们将RNA-seq分析与ChIP-seq分析相结合,以鉴定胚胎干细胞、SVZ-NSCs和非神经源性成纤维细胞中染色质标记发生变化的lncRNA位点。这项工作使我们获得了一个注释为Dlx1as的转录本,这是一个2.8 kb的非编码RNA,转录自Dlx2基因附近的超保守区域。随后在培养的SVZ-NSCs中进行的敲除实验表明,Dlx1as对于这些培养物中有效的神经发生是必要的。目的1将评估Dlx1as在体内促进神经发生是否必要。为了测试Dlx1as是否必要,我们将在成年小鼠脑室中注射敲低构建物,并评估SVZ-NSCs产生神经元的能力。在Aim 2中,我们将评估Dlx1as是否可以指导染色质修饰剂和修饰。初步数据显示,三胸染色质修饰复合体成员MLL1在分化过程中定位于Dlx1/2位点,并且这种定位依赖于rna。Dlx1/2是否负责将MLL1靶向到Dlx1/2启动子和/或增强子上?我们将使用ChIP-qPCR和RNA免疫沉淀(RIP)分析来评估dlx1as缺失的SVZ-NSC培养中Dlx1/2位点染色质状态的变化。我们将通过RIP-qPCR确定Dlx1as是否与特异性染色质重塑因子相互作用并可能招募特异性染色质重塑因子。我假设Dlx1as是体内神经发生所必需的,通过调节募集到Dlx1/2位点的染色质修饰因子。
英文摘要
DESCRIPTION (provided by applicant): Transcriptome analysis has demonstrated that 70%-90% of the genome is transcribed, yet surprisingly only 1- 2% codes for protein. Recent work has unveiled a new class of non-coding transcript, termed long noncoding RNAs (lncRNAs). A known major function of these lncRNAs is to specifically direct chromatin-modifiers to their targets genome-wide. While bioinformatic advances have lead to extensive cataloguing and functional analysis of lncRNAs in cultured cells, in vivo data is severely lacking. The sub-ventricular zone (SVZ) of the mouse brain represents an ideal system in which to study the role of lncRNAs in vivo. The SVZ contains multipotent neural stem cells (SVZ-NSCs) capable of giving rise to local glial cells as well as terminally differentiated neurons for the olfactory bul (OB). This fate restriction, of stem cells to terminally differentiated cells of the neural lineage is known to be dependent on chromatin-state changes and the actions of key transcription factors. The neural lineage in the SVZ can therefore be used to interrogate the interplay of chromatin state, transcriptional programs, and lncRNAs. The major goal of this work is to characterize the expression and function of a neurogenic lncRNA in vivo. To this end, we have performed RNA-seq and transcriptome reconstruction on RNA isolated from microdissected SVZ and OB tissue. This provided a comprehensive annotation of all lncRNAs expressed in the SVZ and OB, and identified those transcripts specifically enriched in neurogenic brain regions. We combined this RNA-seq analysis with ChIP-seq analysis to identify lncRNA loci that undergo changes in chromatin marks in embryonic stem cells, SVZ-NSCs, and non-neurogenic fibroblasts. This work led us to a transcript annotated as Dlx1as, a 2.8 kb noncoding RNA transcribed from an ultraconserved region adjacent to the Dlx2 gene. Subsequent knockdown experiments in cultured SVZ-NSCs revealed Dlx1as is necessary for efficient neurogenesis in these cultures. Aim 1 will evaluate whether Dlx1as is necessary to promote neurogenesis in vivo. To test if Dlx1as is necessary, we will inject a knockdown construct into the ventricle of adult mice, and assess the ability of the SVZ-NSCs to produce neurons. In Aim 2, we will assess whether Dlx1as can direct chromatin modifiers and modifications. Preliminary data reveals that trithorax chromatin modification complex member MLL1 is localized to the Dlx1/2 locus during differentiation, and this localization is RNA-dependent. Is Dlx1as responsible for targeting MLL1 to the Dlx1/2 promoters and/or enhancers? We will use ChIP-qPCR and RNA immunopreciptation (RIP) analysis to assess the chromatin-state changes at the Dlx1/2 locus in Dlx1as-depleted SVZ-NSC cultures. We will determine whether Dlx1as interacts with and potentially recruits specific chromatin remodeling factors through RIP-qPCR. I hypothesize that Dlx1as is required for neurogenesis in vivo through modulation of the chromatin- modifying factors recruited to the Dlx1/2 locus.
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