Targeting MELK-mediated EZH2 signaling in glioma stem cells
Targeting MELK-mediated EZH2 signaling in glioma stem cells
批准号:
8686100
负责人:
Jeongwu Lee
金额:
$25.26万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-07-01 至 2018-06-30
关键词:
AffectBindingBiochemicalBiologicalBrainBrain NeoplasmsCaringCell SurvivalCellsCellular biologyCharacteristicsClinicalDataDevelopmentEmbryoExcisionExhibitsGenesGeneticGlioblastomaGliomaGlomerular basement membrane antibodyGoalsGrowthHistonesIndividualLeadLesionLeucine ZippersLifeLinkLysineMalignant NeoplasmsMalignant neoplasm of brainMapsMediatingMethylationMitoticModelingMolecularOncogenesOncogenicOperative Surgical ProceduresOutcomePathway interactionsPatientsPhosphorylationPhosphotransferasesPoint MutationProcessProtein-Serine-Threonine KinasesProteinsRadiationRadiation therapyRecurrenceResistanceRoleSerineSignal PathwaySignal TransductionStat3 proteinStem Cell DevelopmentStem cellsTestingTherapeuticTransferaseTranslationsTreatment EfficacyTreatment ProtocolsTumor Stem Cellsarmbasecell growthchemotherapyconventional therapyeffective therapygene repressionhuman EZH2 proteinimprovedin vivoinhibitor/antagonistkinase inhibitormutantnovelnovel therapeutic interventionnovel therapeuticspalliationpalliativepreventpublic health relevanceradiation resistanceresponseself-renewalsmall moleculestandard carestemtherapeutic targettherapy resistanttranscription factortumortumor growthtumorigenic
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Glioblastoma multiforme (GBM) is a devastating brain cancer with a mean survival of only 14.6 months. Current standard-of-care therapies provide only palliation, indicating an urgent need to develop more effective therapeutic options. GBMs display a hierarchy of differentiation states within the tumor, similar to normal brain development
processes. Molecular signals that initiate and maintain gliomas commonly overlap with those involved in stem cell development, and indeed accumulating evidence suggests that GBM stem-like cells (GSCs) contribute to tumor propagation, recurrence and the eventual loss of life associated with these lesions. However, molecular mechanisms that regulate GSC survival and therapy resistance remain poorly understood, and this has hampered efforts to develop effective therapies that prevent GBM growth and recurrence. Our recent studies and preliminary data have discovered a novel molecular signaling cascade that may control the survival, proliferation, and therapy resistance of GSCs. This pathway involves the mitotic kinase MELK, methyl transferase EZH2, and oncogenic transcription factor STAT3. Importantly, dysregulation of this pathway accelerates GSC growth and promotes GBM malignancy, and are tightly associated with poor patient outcome. This project will interrogate the role of this MELK-EZH2-STAT3 pathway in GSC self-renewal, survival, GBM progression, and radiation resistance. Our data strongly indicate that inhibition of the MELK-EZH2-STAT3 signaling axis by targeting the upstream effector MELK may have profound clinical implications since it can simultaneously block multiple oncogenic signaling pathways all of which are the well-known therapeutic targets. Toward this goal, we have developed a small-molecule MELK inhibitor that could decrease GSC survival and tumor growth in vivo. We anticipate that this study will yield a new paradigm for GSC biology and a novel therapeutic approach to target key regulators of GSC, which may lead to the translation into improved therapies.
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