G-Quadruplex-Mediated Transcriptional Regulation of PDGFR-??
G-Quadruplex-Mediated Transcriptional Regulation of PDGFR-??
批准号:
8396719
负责人:
LAURENCE H. HURLEY
金额:
$5.41万
依托单位:
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:
2010-07-01 至 2015-04-30
关键词:
AdenineAffinity ChromatographyArteriosclerosisAspergillus Nuclease S1Base PairingBerylliumBindingBiologicalBiological AssayBiological ProcessDNAData ReportingDependencyDiseaseDoseElementsFeedbackFunctional disorderG-QuartetsGC Rich SequenceGene ExpressionGenesGenetic TranscriptionGoalsGuanineHousingHumanIndiumIndividualInflammatoryLibrariesLuciferasesMalignant NeoplasmsMalignant neoplasm of pancreasMapsMediatingMethodsMolecular TargetMusMutationNuclear ExtractPDGFRB genePatternPharmaceutical PreparationsPlasmidsPlatelet-Derived Growth Factor ReceptorPlatelet-Derived Growth Factor beta ReceptorPrimer ExtensionPromoter RegionsProteinsRelative (related person)ReporterReporter GenesRunningScreening procedureSequence DeletionSp1 Transcription FactorStructureSystemTechniquesTestingTherapeuticTimeTranscription Initiation SiteTranscriptional Regulationbasec-myc Genescombinatorialinsightmutantnucleaseoverexpressionprogramspromoterpublic health relevanceresearch studysmall moleculestructural biologytelomestatintwo-dimensional
中文摘要
描述(由申请人提供):pdgfr - β的过表达是胰腺癌以及包括动脉硬化在内的其他炎症性疾病的重要因素,因此是一个非常重要的分子靶点。该提案的长期目标是开发能够特异性抑制pdgfr - β基因表达的小分子疗法。我们的策略利用了最近对g -四联体在包括c-Myc在内的许多基因转录沉默中的重要性的见解。本提案中报告的初步数据表明,由四个重叠的g -四联体组成的簇是控制pdgfr - β转录的关键因素。我们还证明了已知的g -四联体相互作用化合物对pdgfr - β基因表达的不同影响取决于组分g -四联体的选择性。转录诱导的超螺旋性在启动子区双链DNA向g -四链DNA的转化中起着重要作用。因此,我们需要验证的假设是,转录诱导的负超螺旋度为pdgfr - β启动子中的NHE提供了实时反馈机制,以调节pdgfr - β转录的发射速率(巡航控制)和激活或沉默(开/关开关)。具体目的是:(1)通过pdgfr - β启动子元件的缺失和突变分析,确定54端、54中端、34中端和34端g -四重体形成序列的生物学功能,进而确定超卷曲对pdgfr - β启动子中g -四重体形成模式的影响。(2)通过核磁共振确定pdgfr - β启动子中g -四联体的折叠模式和结构。(3)鉴定与pdgfr - β启动子中g -四联体成分结合差异的特定蛋白质和小分子。针对特定目标1,我们将构建含有pdgfr - β启动子插入的超卷曲质粒和荧光素酶报告系统。对于特定的目的2,将使用高场核磁共振来确定位于pdgfr - β启动子元件中的g -四联体的结构。对于特定的目标3,我们将使用亲和层析和小分子筛选方法来鉴定与单个g-四联体结合的蛋白质和药物样分子。这些实体的生物效应将在具体目标1中确定。
英文摘要
DESCRIPTION (provided by applicant): Overexpression of PDGFR-beta is an important factor in pancreatic cancer as well as other inflammatory diseases, including arteriosclerosis and therefore is a highly significant molecular target. The long-range goal of this proposal is to develop small molecule therapeutics that will specifically suppress PDGFR-beta gene expression. Our strategy takes advantage of the recent insight into the importance of G-quadruplexes in transcriptional silencing of a number of genes, including c-Myc. Preliminary data reported in this proposal demonstrate that a cluster of four overlapping G-quadruplexes are key elements in the control of PDGFR-beta transcription. We have also demonstrated that known G-quadruplex-interactive compounds have differential effects on PDGFR-beta gene expression dependent on the selectivity for the constituent G-quadruplexes. Transcriptionally induced superhelicity has been demonstrated to be important in the conversion of duplex DNA to G-quadruplex in promoter region. Thus our hypothesis to be tested is that the negative superhelicity induced by transcription provides a real-time feedback mechanism into the NHE in the PDGFR-beta promoter to modulate both the firing rate (cruise control) and activation or silencing (on/off switch) of PDGFR-beta transcription. The specific aims are: (1) To determine the biological function of the 54-end, mid-54, mid-34, and 34-end G-quadruplex-forming sequences by deletion and mutational analysis of the PDGFR-beta promoter element and then determine the effect of supercoiling on the pattern of G-quadruplex formation in the PDGFR-beta promoter. (2) To determine by NMR the folding patterns and structures of the G-quadruplexes in the PDGFR-beta promoter. (3) To identify specific proteins and small molecules that bind differentially to the constituent G-quadruplexes found in the PDGFR-beta promoter. For specific aim 1, we will construct supercoiled plasmids containing PDGFR-beta promoter inserts and a luciferase reporter system. For specific aim 2, high-field NMR will be used to determine the structures of the constituent G-quadruplexes located in the PDGFR-beta promoter element. For specific aim 3, we will use affinity chromatography and small molecule screening methods to identify proteins and drug-like molecules that bind to the individual G-quadruplexes. The biological effects of these entities will be determined in specific aim 1.
PUBLIC HEALTH RELEVANCE: An effective means to turn on and off genes associated with diseases, such as cancer and arteriosclerosis, with small drug-like molecules is still not available. In this project, we take advantage of a new mechanism to achieve this objective. The target is a gene that is commonly involved in pancreatic cancer and arteriosclerosis.
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会议论文
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