Homologous Recombination in Genome Stability and Tumor Suppression
Homologous Recombination in Genome Stability and Tumor Suppression
批准号:
7631620
负责人:
KEVIN D MILLS
金额:
$36.11万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-06-08 至 2011-05-31
关键词:
Adoptive TransferAllelesAntigensApoptoticB cell differentiationB-Cell DevelopmentB-LymphocytesBindingCancer DiagnosticsCell CycleCellsChromatidsChromosomal InstabilityChromosome abnormalityChromosomesCo-ImmunoprecipitationsDNA DamageDNA Double Strand BreakDNA biosynthesisDNA replication forkDataDevelopmentDiagnostic testsDouble Strand Break RepairGene AmplificationGenesGeneticGenome StabilityGenomic InstabilityGoalsHumanImmunoglobulin Class SwitchingImmunoglobulin Somatic HypermutationIn VitroLymphocyteLymphoidMalignant - descriptorMalignant NeoplasmsMeasuresMicroscopyMolecularNull LymphocytesOncogenicOpticsPathway interactionsPatientsPhasePhenotypePrognostic MarkerProliferatingPropertyProtein p53ProteinsPublic HealthResolutionRiskRoleSomatic CellStagingStructureSystemTP53 geneTestingTumor SuppressionV(D)J RecombinationWorkXRCC2 genebasecancer therapycell injurycell typedesignhomologous recombinationin vivooutcome forecastpreventpublic health relevancerepairedtumortumorigenesis
中文摘要
描述(由申请人提供):本提案的目的是确定同源重组在基因组稳定性、肿瘤抑制和正常发育中的作用。染色体不稳定性是许多癌症的主要标志,染色体畸变可能是重要的预后标志,更大的不稳定性通常对应于更差的前景。不幸的是,防止或促进染色体不稳定性的潜在分子机制在很大程度上仍然未知。越来越多的证据表明,未修复的DNA双链断裂(DSB)在基因组不稳定性。同源重组(HR)代表一种关键的DSB修复途径,其在细胞增殖时可能特别重要。我们的中心假设是同源重组对于防止快速分裂细胞中与癌症相关的基因组不稳定性至关重要。我们将通过关注淋巴细胞中一个重要的HR途径组分XRCC 2的功能来验证这一假设。使用淋巴细胞培养系统,适合在体外和体内研究,我们最近表明,XRCC 2是正常的B细胞发育所需的。我们将使用相同的系统来实现以下具体目标:1)测试XRCC 2阻止复制相关基因组不稳定性和肿瘤发生的程度。使用体外和体内方法,我们将测试Xrcc 2缺陷细胞是否存在自发或诱导的染色体异常,并测量Xrcc 2缺陷对肿瘤抑制的影响。2)确定XRCC 2和p53蛋白之间的相互作用机制。我们的数据表明Xrcc 2和编码p53的基因(Trp 53)之间存在遗传相互作用。我们将使用多种方法来测试这是否涉及蛋白质的直接或间接物理相互作用。3)测定XRCC 2在正常淋巴细胞发育中的功能。我们的数据表明,XRCC 2不仅在防止基因组不稳定性方面具有关键功能,而且在促进正常淋巴发育方面也具有关键功能。为了更好地理解肿瘤抑制的机制,我们将使用体外和体内方法精确定义XRCC 2的正常淋巴发育作用。这项工作对于了解染色体异常的分子起源以及它们如何发挥作用以驱动癌症发展至关重要。公共卫生相关性:染色体畸变是人类癌症的标志,可以作为患者预后的有用指标。在这个建议中,我们将调查癌症相关的染色体畸变的起源和发生的机制。确定这些机制将是设计更好的癌症诊断测试的关键;改进预后标志物;并根据肿瘤特异性特性开发新的癌症疗法。
英文摘要
DESCRIPTION (provided by applicant): The objectives of this proposal are to determine the roles for homologous recombination in genome stability, tumor suppression, and normal development. Chromosomal instability is a major hallmark of many cancers, and chromosome aberrations can be important prognostic markers, with greater instability usually corresponding to poorer outlook. Unfortunately, the underlying molecular mechanisms that prevent or promote chromosomal instability remain largely unknown. Growing evidence implicates unrepaired DNA double strand breaks (DSB) in genome instability. Homologous recombination (HR) represents one critical DSB repair pathway that may be especially important as cells are multiplying. Our central hypothesis is that homologous recombination is crucial for preventing cancer-related genome instability in rapidly dividing cells. We will test this hypothesis by focusing on the function of one important HR pathway component, XRCC2, in lymphocytes. Using a lymphocyte culture system amenable to both in vitro and in vivo studies, we recently showed that XRCC2 is required for normal B-cell development. We will employ this same system to now carry out the specific aims of: 1) Testing the extent to which XRCC2 prevents replication-associated genome instability and tumorigenesis. Using both in vitro and in vivo approaches, we will test Xrcc2-defective cells for spontaneous or induced chromosomal abnormalities, and measure the effects of Xrcc2-deficiency on tumor suppression. 2) Defining the mechanisms of interaction between XRCC2 and the p53 protein. Our data indicate a genetic interaction between Xrcc2 and the gene encoding p53 (Trp53). We will use multiple approaches to test whether this involves direct or indirect physical interaction of the proteins. 3) Measuring the functions of XRCC2 in normal lymphocyte development. Our data suggest that XRCC2 has critical functions, not just in preventing genome instability, but also in promoting normal lymphoid development. To better understand the mechanisms of tumor suppression, we will precisely define the normal lymphoid developmental roles of XRCC2, using in vitro and in vivo approaches. This work will be essential to understanding the molecular origins of chromosomal abnormalities and how they may function to drive cancer development. PUBLIC HEALTH RELEVANCE: Chromosome aberrations are a hallmark of human cancer, and can be useful indicators of patient prognosis. In this proposal we will investigate the origins of cancer-related chromosome aberrations and the mechanisms by which they occur. Identifying these mechanisms will be key to designing better cancer diagnostic tests; refining prognostic markers; and developing new cancer therapies based on tumor-specific properties.
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