MECHANISMS OF KSHV-INDUCED CELLULAR TRANSFORMATION
MECHANISMS OF KSHV-INDUCED CELLULAR TRANSFORMATION
批准号:
7561895
负责人:
ASHLEE V. MOSES
金额:
$22.59万
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:
2007-05-01 至 2008-04-30
关键词:
Antisense OligonucleotidesAntisense RNAAtypical Endothelial CellAutomobile DrivingCellsClassificationComputer Retrieval of Information on Scientific Projects DatabaseDNA Microarray ChipDNA Microarray formatDermalDevelopmentDrug Delivery SystemsEndothelial CellsFundingGene ExpressionGene Expression ProfilingGene SilencingGenesGleevecGoalsGrantHIV SeropositivityHuman Herpesvirus 8ImmunocompetentIn VitroIndividualInfectionInstitutionKaposi SarcomaLesionMalignant NeoplasmsMicroarray AnalysisMolecularNumbersOncogene ActivationOrganPatientsPhenotypePlayProto-Oncogene Protein c-kitProto-OncogenesRNA InterferenceResearchResearch PersonnelResourcesRoleSkin NeoplasmsSourceTechniquesTechnologyTyrosine Kinase InhibitorUnited States National Institutes of HealthViral GenomeVisceralbasecell transformationin vitro Modelmetaplastic cell transformationtumortumorigenesistumorigenic
中文摘要
这个子项目是许多研究子项目中利用
资源由NIH/NCRR资助的中心拨款提供。子项目和
调查员(PI)可能从NIH的另一个来源获得了主要资金,
并因此可以在其他清晰的条目中表示。列出的机构是
该中心不一定是调查人员的机构。
卡波西肉瘤(KS)是一种皮肤和内脏器官的血管增生性肿瘤,虽然在免疫功能正常的人中很少见,但在艾滋病毒阳性患者中是最常见的癌症。人类疱疹病毒8型(HHV8/KSHV)是KS的病原体,感染以KS为特征的非典型内皮细胞和梭形细胞,在推动肿瘤发展中发挥积极作用。该项目的目标是描述KSHV将内皮细胞转化为梭形细胞并促进肿瘤形成的分子机制。我们建立了KSHV感染真皮微血管内皮细胞(DMVEC)的体外模型。DMVEC可在体外感染KSHV,感染可导致梭形细胞形成和获得转化表型。KSHV感染的DMVEC反映了KS肿瘤中的基因表达,即大多数感染细胞携带病毒基因组处于潜伏状态。我们使用了DNA微阵列分析,然后使用靶向药物、反义寡核苷酸或RNA干扰的基因沉默方法来识别和验证与KS肿瘤发生有关的细胞基因。基因表达谱显示,在KSHV感染转化的DMVEC中,许多原癌基因和其他潜在的致癌细胞基因被诱导。酪氨酸激酶抑制剂Gleevec的上市使我们能够证明原癌基因c-Kit在KSHV诱导的DMVEC转化中的作用。使用反义和RNA干扰技术沉默c-Kit同样可以抑制DMVEC的转化,并证实这些基因沉默技术可以用于验证额外细胞基因的作用。我们正在研究c-Kit的诱导机制以及癌基因激活引起的下游变化。此外,我们正在使用一种系统的方法来识别和验证KSHV诱导的其他致瘤基因。
英文摘要
This subproject is one of many research subprojects utilizing the
resources provided by a Center grant funded by NIH/NCRR. The subproject and
investigator (PI) may have received primary funding from another NIH source,
and thus could be represented in other CRISP entries. The institution listed is
for the Center, which is not necessarily the institution for the investigator.
Kaposi's sarcoma (KS) is an angioproliferative tumor of the skin and visceral organs that, while rare in immunocompetent individuals, is the most frequent cancer developing in HIV-positive patients. Human herpesvirus 8 (HHV8/KSHV), the etiologic agent of KS, infects the atypical endothelial cells and spindle cells that characterize the lesion, and plays an active role in driving tumor development. The goal of this project is to characterize the molecular mechanisms through which KSHV transforms endothelial cells into spindle cells and contributes to tumor formation. We have developed an in vitro model based on KSHV infection of dermal microvascular endothelial cells (DMVEC). DMVEC can be infected with KSHV in vitro, and infection leads to spindle cell formation and acquisition of a transformed phenotype. The KSHV-infected DMVEC mirror the gene expression seen in KS tumors whereby the majority of infected cells harbor the viral genome in a latent state. We have used DNA microarray analysis, followed by a gene silencing approach using targeted drugs, antisense oligonucleotides or RNA interference, to identify and validate cellular genes that contribute to KS tumorigenesis. Gene expression profiling has shown that a number of proto-oncogenes, and other potentially tumorigenic cellular genes, are induced in DMVEC transformed by KSHV infection. The availability of the tyrosine kinase inhibitor Gleevec allowed us to demonstrate a role for the proto-oncogene c-Kit in KSHV-induced DMVEC transformation. Silencing of c-Kit using antisense and RNA interference technology similarly inhibited DMVEC transformation and confirmed that these gene silencing techniques could be used to validate the role of additional cellular genes. We are investigating the mechanisms of c-Kit induction as well as downstream changes resulting from oncogene activation. In addition, we are using a systematic approach to identify and validate additional KSHV-induced tumorigenic genes.
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