The role of the Kras4A isoform in epithelial carcinogenesis
The role of the Kras4A isoform in epithelial carcinogenesis
批准号:
8545677
负责人:
ALLAN BALMAIN
金额:
$25.44万
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:
2006-04-01 至 2017-06-30
关键词:
AccountingAffectAlveolarAnimalsAutomobile DrivingBiochemicalCancer EtiologyCell membraneCellsCessation of lifeChemical AgentsChromosomes, Human, Pair 6CodeCollaborationsColonDefectDevelopmentDimerizationDown-RegulationDrug TargetingEmbryoEpithelialEpitheliumExposure toFamily memberFibroblastsGene ExpressionGenesGenetically Engineered MouseGenotypeGoalsHumanImageImaging technologyIn VitroKRAS2 geneLaboratoriesLightLocationLungLung NeoplasmsMaintenanceMalignant - descriptorMalignant NeoplasmsMalignant neoplasm of lungMediatingMicroscopyMinorModelingMusMutateMutationNatural regenerationNormal tissue morphologyOncogene ProteinsPIK3CG genePancreatic carcinomaPathway AnalysisPathway interactionsPatientsPlayPredispositionPropertyProtein IsoformsProteinsRAS Family GeneRNA SplicingRas Signaling PathwayRelative (related person)ResistanceRoleSignal PathwaySignal TransductionSkinSkin NeoplasmsStem cellsSystemTestingTetracyclinesTherapeuticTissuesVariantWorkcancer stem cellcarcinogenesisin vivomouse modelmutantnew technologynovelnovel strategiesphotoactivationpromotersingle moleculesmall hairpin RNAstem cell populationtissue regenerationtooltumortumor initiation
中文摘要
描述(由申请人提供):大约30年前发现RAS家族的基因在人类癌症中发生突变,该项目的长期目标是更深入地了解这些基因导致恶性转化的机制。KRAS基因是最常见的突变家族成员,特别是在胰腺癌、结肠癌和肺癌中。这些肿瘤每年在全球造成数十万人死亡。使用基因工程小鼠模型,该实验室表明Kras的次要亚型(Kras4A)对于Kras突变肿瘤的发展至关重要。缺乏这种同种型的小鼠对Kras突变的肺或皮肤肿瘤的发展具有高度抗性,这表明抑制Kras4A的功能可能会对患者产生治疗益处。该项目涉及对这种特定形式的Kras蛋白激活的信号通路的全面分析。许多新的方法将用于了解Kras4A如何在细胞和组织内发出信号。最近开发的一种新的成像方法(光激活定位显微镜,或PALM)将对细胞中Kras4A单分子的位置进行成像,并找出突变型和野生型Kras4A蛋白之间是否存在相互作用。将研究缺乏Kras4A或Kras4A和4B的细胞中通过经典RAS途径组分的信号传导,以鉴定这些细胞中缺乏的任何特定信号传导途径。最后,一个公正的观点Kras信号在体内小鼠肺将开发,使用新的基因表达网络分析工具。比较对肺癌易感的小鼠的基因表达网络与由于Kras4A缺失而具有抗性的小鼠的基因表达网络,可以确定先前与Ras无关的途径,这些途径可能解释Kras4A在转化中的关键作用。使用小鼠体内模型,Kras4A在损伤后从干细胞再生肺上皮中的可能功能将被研究,并且将开发使用诱导型shRNA抑制Kras4A的新模型,以研究该蛋白在具有突变Kras基因的肿瘤的增殖和维持中的作用。
英文摘要
DESCRIPTION (provided by applicant): Genes of the RAS family were found to be mutated in human cancers around 30 years ago, and the long term goal of this project is to develop a deeper understanding of the mechanisms by which these genes cause malignant transformation. The KRAS gene is the most commonly mutated family member, particularly in carcinomas of the pancreas, colon and lung. Together, these tumors account for hundreds of thousands of deaths worldwide each year. Using genetically engineered mouse models, this laboratory showed that a minor isoform of Kras (Kras4A) is essential for development of Kras mutant tumors. Mice deficient in this isoform are highly resistant to development of lung or skin tumors with Kras mutations, suggesting that inhibition of the function of Kras4A could result in therapeutic benefit for patients. This project involves a comprehensive analysis of the signaling pathway that is activated by this specific form of the Kras protein. A number of novel approaches will be used to understand how Kras4A signals within cells and tissues. A recently developed new imaging approach (Photo-activated localization microscopy, or PALM) will image the location of single molecules of Kras4A in cells, and find out whether there is an interaction between mutant and wild type Kras4A proteins. Signaling through canonical RAS pathway components in cells lacking Kras4A or both Kras4A and 4B, will be investigated in order to identify any specific signaling pathways that are deficient in these cells. Finally, an unbiased view of Kras signaling in vivo in mouse lungs will be developed, using novel gene expression network analysis tools. Comparison of gene expression networks from mice that are susceptible to lung cancer with those that are resistant due to deletion of Kras4A may identify pathways not previously associated with Ras that may account for the critical role of Kras4A in transformation. Using mouse models in vivo, the possible function of Kras4A in regeneration of lung epithelium from stem cells after damage will be studied, and new models in which Kras4A can be inhibited using inducible shRNA will be developed to investigate the role of this protein in the propagation and maintenance of tumors with mutant Kras genes.
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