Transcriptional control of pancreatic development
Transcriptional control of pancreatic development
批准号:
7993185
负责人:
KLAUS H KAESTNER
金额:
$10.0万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-01-01 至 2010-03-31
关键词:
AblationAdultAffectBeta CellBiochemicalCREB1 geneCalciumCell Differentiation processCell ProliferationCell SurvivalCell physiologyCellsChromosomes, Human, Pair 10Chronic DiseaseCouplingCyclic AMPDataDefectDevelopmentDiabetes MellitusDietDifferentiation and GrowthDiseaseDominant-Negative MutationEndocrineEpithelialEtiologyFailureFinancial compensationGene DeletionGenesGeneticGenetic TranscriptionGenetic VariationGenomicsGlucose tolerance testHaplotypesHealthHomeoboxHormonesHyperinsulinismImageImpairmentInheritedInsulinInsulinaseIslets of LangerhansKinesinKnockout MiceLeadLocationMaintenanceMediatingMetabolicMetabolismMolecularMolecular ProfilingMolecular TargetMusMutationNon-Insulin-Dependent Diabetes MellitusObesityPancreasPatientsPatternPerformancePerinatalPersonal SatisfactionPhenotypePhysiologicalPrevalencePrimordiumRoleStimulusTamoxifenTranscriptional RegulationUnited StatesWorkblood glucose regulationcell typegene functiongenome wide association studygenome-wideglucagon-like peptide 1impaired glucose tolerancein vivoinsulin secretionisletpancreas developmentpublic health relevancerecombinaseresponsetooltranscription factor
中文摘要
描述(由申请人提供):糖尿病是一种终身慢性疾病,2007年全球患病率估计为1.8亿患者。转录因子在糖尿病病因学中的重要性由以下事实例证:六种已知形式的单基因糖尿病(MODY)中的五种由编码这些因子的基因中的突变引起。最近的全基因组关联研究已经确定了与2型糖尿病相关的多个基因座或基因组区域;然而,这些新基因变异与疾病之间的关联机制尚未确定。这对于10号染色体上的一个区域特别重要,因为在这种情况下,三个基因在同一个单倍型块中,因此一起遗传:HHEX(造血表达同源框),KIF 11(驱动蛋白相互作用因子11)和IDE(胰岛素降解酶)。因此,我们将调查的贡献,小鼠Hhex基因内分泌胰腺分化和2-细胞功能的遗传和基因组手段。此外,我们将通过CREB的条件性基因消融来扩展我们在胰腺发育和功能的转录调控方面的工作,现有的数据对此存在争议。我们的具体目标是:在具体目标1中,我们将使用条件性基因消除和全基因组定位分析来确定Hhex对胰腺发育和分化的贡献。在目标2中,我们将使用多种生理、生化和分子方法来描述Hhex在成熟2-细胞的功能和增殖中的作用。在目标3中,我们将研究cAMP应答转录因子CREB如何控制刺激分泌偶联和2细胞对肠促胰岛素的反应,使用细胞类型和诱导基因缺失。糖尿病是一个严重的健康问题,影响着美国2000多万人。产生胰岛素的β细胞不能跟上身体对胰岛素的需求是糖尿病的主要原因。调节β细胞增殖和功能的分子机制远未完全理解。因此,我们将开发和利用新的遗传工具来阐明有关转录调节因子或主基因在β细胞增殖和性能中的功能的基本问题。
英文摘要
DESCRIPTION (provided by applicant): Diabetes mellitus is a lifelong chronic disease with worldwide prevalence estimated at 180 million patients in 2007. The importance of transcription factors in the etiology of diabetes is exemplified by the fact that five of the six known forms of monogenic diabetes (MODY) result from mutations in genes encoding these factors. Recent genome-wide associations studies have identified multiple loci, or genomic regions, that are associated with type 2 diabetes; however, the mechanisms behind the associations of these new gene variants and disease have yet to be determined. This is of particular importance for a region on chromosome 10, because in this case three genes are in the same haplotype block and thus inherited together: HHEX (Hematopoietically expressed homeobox), KIF11 (kinesin-interacting factor 11) and IDE (insulin-degrading enzyme). Therefore, we will investigate the contribution of the mouse Hhex gene to endocrine pancreas differentiation and 2-cell function using genetic and genomic means. In addition, we will extend our work on transcriptional regulation of pancreatic development and function through conditional gene ablation of CREB, for which existing data are controversial. Our specific aims are: In specific Aim 1, we will determine the contribution of Hhex to pancreas development and differentiation using conditional gene ablation and genome- wide location analysis. In Aim 2, we will delineate the role of Hhex in function and proliferation of the mature 2-cell using multiple physiological, biochemical and molecular approaches. In Aim 3, we will investigate how the cAMP- responsive transcription factor CREB controls stimulus-secretion coupling and the 2-cells response to incretins using cell-type and inducible gene deletion. PUBLIC HEALTH RELEVANCE: Diabetes is a significant health problem, affecting more than 20 million people in the United States. Failure of the insulin-producing beta-cell to keep up with the body's need for insulin is a major contributor to diabates. The molecular mechanisms that regulate beta-cell proliferation and function are far from being understood completely. Therefore, we will develop and exploit new genetic tools to elucidate fundamental questions regarding the function of transcriptional regulators, or master genes, in proliferation and performance of beta-cells.
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