Radiation-induced translational control of gene expression
Radiation-induced translational control of gene expression
批准号:
7539181
负责人:
Philip Tofilon
金额:
$34.53万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-12-11 至 2012-11-30
关键词:
AffectAnimal WelfareAttenuatedBibliographyBindingCell DeathCell LineCell SurvivalCellsCharacteristicsCountryDataElementsEnvironmentEnvironmental ImpactEquipmentEvaluationEventExperimental DesignsFMRPGene ExpressionGene Expression ProfileGenesGenetic TranscriptionGenetic TranslationGliomaGoalsHistologyIACUCInternationalMDM2 geneMammary NeoplasmsMediatingMessenger RNAMicroarray AnalysisModificationMolecularMolecular ProfilingNormal CellPlayPolyribosomesPrincipal InvestigatorProcessProteinsRNA-Binding ProteinsRadiationRadiation ToleranceRadiation therapyRadiosensitizationReportingResearchResearch Ethics CommitteesResourcesRoleSourceSpecificityTestingTranslationsTumor Cell LineVertebratesabstractingcell typedefined contributionexpirationgenome-widehuman subjectinsightinterestirradiationmTOR inhibitionnovelnumb proteinprogramsrepairedresearch studytumor
中文摘要
描述(由申请人提供):辐射引起的基因表达变化的全基因组评估通常使用细胞总mRNA的微阵列分析进行评估,这反映了基因转录的修饰。然而,基因表达不仅依赖于转录活性,还依赖于各种最终控制mRNA翻译的转录后事件。我们最近使用多体结合mRNA的微阵列分析产生的数据表明,基因翻译比转录更容易受到辐射诱导修饰的影响。重要的是,本研究表明,翻译活性受到影响的基因与其相应蛋白的表达之间存在相关性。本提案的总体目标是描述辐射诱导基因表达的翻译控制在细胞放射反应中的意义。为此,辐射诱导的翻译基因表达谱将作为细胞类型的函数产生。这些研究将涉及从肿瘤细胞系中分离的多体结合mRNA的微阵列分析,这些细胞系来源于与放疗相关的组织学以及各种正常细胞。这项全基因组范围的研究将验证以下假设:辐射诱导的基因表达的翻译控制是细胞辐射反应的基本特征,并且受辐射诱导的翻译控制的基因存在肿瘤类型和/或谱系特异性。此外,定义的分子和过程,介导辐射诱导的翻译控制将被划定。这些研究将确定一般翻译机制的贡献,以及已被证明调节特定mRNA亚群翻译的选定RNA结合蛋白。最后,我们将检测介导辐射诱导翻译控制过程的分子和翻译受辐射影响的mrna对应的蛋白质在辐射后细胞存活中的作用。这些分析,除了确定放射敏感性的基本决定因素外,还将确定辐射诱导的基因表达的翻译控制是否为辐射调节剂提供了新的靶标来源。虽然修改组成表达蛋白的放射生物学意义已经明确确立,但拟议的研究提供了一个机会来研究和潜在地利用辐射诱导的基因表达的翻译控制,这是细胞放射反应的一个以前未被探索的组成部分。
英文摘要
DESCRIPTION (provided by applicant): The genome-wide evaluation of radiation-induced changes in gene expression has typically been evaluated using microarray analysis of total cellular mRNA, which reflects modifications in a gene's transcription. However, gene expression is dependent not only on transcriptional activity, but on a variety of post-transcriptional events that ultimately control mRNA translation. Our recent data generated using the microarray analyses of polysome bound mRNA indicate that gene translation is considerably more susceptible to radiation induced modifications than is transcription. Importantly, this study showed that there is a correlation between the genes whose translational activity was affected and the expression of their corresponding proteins. The overall goal of this proposal is to delineate the significance of radiation-induced translational control of gene expression in cellular radioresponse. Towards this end, radiation-induced translational gene expression profiles will be generated as a function of cell type. These studies will involve microarray analysis of polysome-bound mRNA isolated from tumor cell lines originating from histologies relevant to radiotherapy as well as from a variety of normal cells. This genome wide interrogation will test the hypotheses that radiation induced translational control of gene expression is a fundamental characteristic of cellular radioresponse and that there is tumor type and/or lineage specificity in the genes subject to radiation-induced translational control. In addition, to define the molecules and processes that mediate radiation-induced translational control will be delineated. The studies will define the contribution of the general translational machinery as well as selected RNA binding proteins that have been shown to regulate the translation of specific mRNA subpopulations. Finally, the molecules mediating the process of radiation-induced translational control and the proteins corresponding to the mRNAs whose translation is affected by radiation will be tested for their role in cell survival after irradiation. These analyses, in addition to identifying fundamental determinants of radiosensitivity, will determine whether radiation-induced translational control of gene expression provides a novel source of targets for radiation modifiers. Whereas the radiobiological significance of modifying constitutively expressed proteins has been clearly established, the proposed studies offer an opportunity to investigate and potentially exploit radiation-induced translational control of gene expression, a previously unexplored component of cellular radioresponse.
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会议论文
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CELL DIFFERENTIATION AND REPAIR OF RADIATION DAMAGE
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