The Role of Fragile Sites in RET/PTC Rearrangement
The Role of Fragile Sites in RET/PTC Rearrangement
批准号:
7585751
负责人:
YUH-HWA WANG
金额:
$25.79万
依托单位国家:
美国
项目类别:
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-03-13 至 2011-01-31
关键词:
10q11.210q21AccountingAftercareAphidicolinAreaBRCA1 geneBromodeoxyuridineCancer PatientCell NucleusCellsCharacteristicsChemicalsChromosomal RearrangementChromosome Fragile SitesDNADNA DamageDNA Replication TimingDNA Sequence RearrangementDNA StructureDNA biosynthesisDataDeoxyribonuclease IDevelopmentExhibitsFrequenciesGene RearrangementGenerationsGenesHumanIn Situ HybridizationIn VitroIntronsIonizing radiationLeadLigationMalignant NeoplasmsMalignant neoplasm of thyroidMapsMeasuresMediatingModelingMolecularMolecular AnalysisMolecular CytogeneticsNCOA4 geneNuclearNuclear Receptor Coactivator 4Papillary CarcinomaPlayPreventiveRET geneRadiationRecording of previous eventsReverse Transcriptase Polymerase Chain ReactionRoleSiteStructureTestingThyroid GlandWorkcancer cellcarcinogenesisexperiencenovel therapeuticsresearch studythyroid neoplasm
中文摘要
描述(申请人提供):染色体重排在许多类型的人类癌症中都很常见,并在癌变中起重要作用。然而,癌细胞中重排的机制仍然知之甚少,甲状腺癌是研究这些机制的一个很好的模型,因为涉及RET基因(称为RETIPTC)的染色体重排是常见的,并且与电离辐射诱导的DMA损伤有明确的关联。然而,辐射暴露只占所有甲状腺肿瘤的一小部分,这为研究其他因素在重排产生中的作用提供了机会。拟议的研究旨在直接测试DMA脆弱性是否参与人类细胞中染色体重排的产生。我们的初步结果表明,脆性位点诱导化学物质可以诱导RET基因断裂,并且在脆性位点诱导条件下可以产生重排。为了进一步调查,。我们将首先检查甲状腺细胞中参与RETIPTC的一个或多个染色体区域是否是脆弱部位的一部分。具体来说,我们将直接确定脆弱位点与RET、H4和ELE1基因之间的物理关系。我们还将发现,在使用易碎位点诱导化学品处理后,这些区域的DMA断裂频率。然后,我们将测试脆弱位点表达是否可以直接导致人甲状腺细胞中RETIPTC重排的产生。我们将直接测试在人类HTori-3甲状腺细胞中,在化学诱导脆性位点和ATR或BRCA1失活后,RET/PTC1和RET/PTC3重排的诱导,ATR或BRCA1已被证明可以显著增加脆性位点的表达。最后,我们将确定在涉及RETIPTC重排的区域是否存在两个脆弱位点的特征,即DNA晚期复制和二级结构形成,从而导致这些区域的DNA断裂。这些研究将确定脆弱位点是否参与甲状腺细胞中RETIPTC重排的产生,并允许探索这些区域的脆弱性机制。这将扩展我们对癌细胞中染色体重排的分子机制的理解,并可能最终导致开发新的治疗或预防恶性肿瘤的方法。染色体重排的机制。
英文摘要
DESCRIPTION (provided by applicant): Chromosomal rearrangements are .common in many types of human cancer and play an important role in carcinogenesis. However, the mechanisms of rearrangement in cancer cells remain poorly understood, thyroid cancer represents an excellent model to study these mechanisms because of a common occurrence of chromosomal rearrangements involving the RET gene, called RETIPTC, and well-established association with DMA damage induced by ionizing radiation. However, radiation exposure accounts only for a small portion of all thyroid tumors, offering a chance to study the role of other factors in the generation of rearrangements. The proposed study aims to test directly if DMA fragility participates in the generation of chromosomal rearrangements in human cells. Our preliminary results showed that fragile site-inducing chemicals can induce breaks in the RET gene, and the rearrangement can be generated under fragile-site inducing conditions. To further investigate this, .we will first examine whether one or more chromosomal regions involved in RETIPTC in thyroid cells are part of fragile sites. Specifically, we will determine directly the physical relationship between the fragile sites and the RET, H4, and ELE1 genes. We will also find the frequency of DMA breaks in these regions after treatment with fragile site-inducing chemicals. Then, we will test whether fragile site expression can lead directly to the generation of RETIPTC rearrangements in human thyroid cells. We will test directly the induction of RET/PTC1 and RET/PTC3 rearrangements in human HTori-3 thyroid cells after chemical induction of fragile sites, and after inactivation of ATR or BRCA1, which has been shown to increase fragile site expression dramatically. Finally, we will determine whether two characteristic features of fragile sites, late DNA replication and secondary structure formation, exist in the regions involved in RETIPTC rearrangements, contributing to the DNA breakage in these areas. These studies will determine whether fragile sites participate in the generation of RETIPTC rearrangement in thyroid cells and allow to explore the mechanisms of fragility in these regions. This will extend our understanding of the molecular mechanisms of chromosomal rearrangements in cancer cells, and may eventually lead to the development of novel therapeutic or preventive measures for malignant tumors developing thro.ugh the mechanism of chromosomal rearrangements.
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