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Glycocalyx and NCOR2-Notch-Mediated Stemness in Glioblastoma Aggressiveness

Glycocalyx and NCOR2-Notch-Mediated Stemness in Glioblastoma Aggressiveness
糖萼和 NCOR2-Notch 介导的胶质母细胞瘤侵袭性干性
批准号:
8718367
负责人:
Yekaterina Andreevna Miroshnikova
金额:
$3.65万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-08-01 至 2016-07-31
关键词:
AddressAdult GliomaAggressive behaviorApoptosisAutomobile DrivingBehaviorBiochemicalBiocompatible MaterialsBiological AssayBioluminescenceBiomechanicsBiophysical ProcessBiophysicsBrainBrain StemBreastCancer BiologyCarbohydratesCaringCell SurvivalCell surfaceCellsCessation of lifeClinicalComputer SimulationConfocal MicroscopyConsensusCritical PathwaysDepositionDevelopmentDiffuseDominant-Negative MutationEffectivenessEngineeringEpithelial CellsFocal AdhesionsFosteringGenerationsGenesGeneticGenetic EngineeringGenetic TranscriptionGlioblastomaGlycocalyxGlycoproteinsGoalsHDAC3 geneHealthHumanHyaluronic AcidImageIn VitroInfiltrationIntegrinsLasersLateralLeadLifeLinkLuciferasesMalignant NeoplasmsMean Survival TimesMeasuresMechanicsMediatingMessenger RNAMissionModalityModelingMolecularMonitorMusMyosin ATPaseNCOR2 geneNaturePatientsPhenotypePropertyProteinsQuality of lifeRadioRelapseRelative (related person)ReporterResearchResearch PersonnelResistanceRoleScanningScientistSignal PathwaySignal TransductionStem cellsSurvival RateTechniquesTestingTherapeuticTissuesTractionTumor Cell InvasionUp-RegulationWorkXenograft procedurebasebiophysical propertiesbrain tissuecaspase-3cell behaviorcell growthchemotherapycohortdesignhyaluronan synthase 1improvedin vivoloss of functionluminescencemouse modelmutantneoplastic cellnotch proteinnoveloverexpressionpreventpublic health relevancerapid growthreceptorresearch studyresponsesecond harmonicsecretasesmall hairpin RNAstemstemnesstemozolomidetherapy resistanttumortumor progression

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中文摘要
翻译
描述(由申请人提供):高级别多形性胶质母细胞瘤(GBM)患者的平均生存时间为6-12个月,因为放化疗相对无效,并且弥漫性侵入健康脑组织。尽管任何GBM亚型的确切起源“顶点细胞”仍不确定,但有合理的共识,即最具侵袭性的GBM来自干细胞,或至少来自多能细胞。迄今为止,绝大多数GBM研究都集中在GBM细胞独特的遗传和生化信号成分上,很少或没有关注GBM细胞的生物物理特征。本文提出的工作旨在描述GBM细胞的细胞内在生物物理特征,使其具有侵袭性。这项跨学科工作的成功完成有可能提供一个新的范例,以阐明GBMs的生存、侵袭性和治疗耐药性增强的基础。目的:本研究的长期目标是通过将物理科学家的概念与基础和临床癌症生物学研究相结合,揭示更有效的GBM治疗方式,延长患者的生存期,提高GBM患者的生活质量,探索细胞内力在GBM侵袭中的作用。具体来说,由于GBMs的侵袭性归因于它们的茎样特性,因此该提案验证了茎性和抗死亡行为是通过一种独特的细胞内在机械表型介导的,这种表型是由于糖萼(细胞相关的碳水化合物层)的改变,并询问了负责其上调的分子机制,该机制被假设通过NCoR2和Notch起作用。方法概述:拟议的工作测试了Notch和NCoR2信号传导之间的功能联系,并阐明了它们的联合作用是否协同驱动高水平糖蛋白在细胞表面的沉积,从而通过生物物理手段驱动整合素和Notch的激活,从而改变生存、侵袭和治疗抗性。利用牵引力、扫描角干涉、TIRF、二次谐波产生、旋转盘和激光共聚焦显微镜等技术来表征WT人类GBM细胞以及修饰NCoR2或Notch细胞的生物物理特性。为了探究在体外维持这些干细胞样特性的机制,将使用GBM细胞的基因工程和生物材料工程策略。人类GBMs的原位异种移植小鼠模型将被用来测试靶向ncor2 - notch -糖萼回路的体内有效性。
英文摘要
DESCRIPTION (provided by applicant): Patients with high grade glioblastoma multiforme (GBM) have a mean survival time of 6-12 months due to the relative ineffectiveness of radio and chemotherapy and diffuse invasion into healthy brain tissue. Although the exact "apex cell" of origin for any GBM subtype remains uncertain, there is reasonable consensus that the most aggressive GBMs arise from stem cells, or at the very least from pluripotent cells. Overwhelming majority of GBM research to date has focused on GBM cell's unique genetic and biochemical signaling components with little or no focus on the biophysical features. Work proposed here aims to characterize the cell-intrinsic biophysical features of GBM cells that render them aggressive. Successful completion of this interdisciplinary work has the potential to offer a new paradigm with which to clarify the basis for enhanced survival, invasiveness, and treatment resistance of GBMs. Objectives: The long term goal of proposed work is to reveal more effective GBM treatment modalities, extend patient survival, and improve the quality of life for GBM patients by integrating physical scientist's concepts with the basic and clinical cancer biology research in order to explore the role of cell-intrinsic force in GBM aggression. Specifically, since aggressive nature of GBMs has been attributed to their stem-like properties, the proposal tests the idea that stemness and death-resistant behavior is mediated though a unique cell-intrinsic mechano-phenotype due to altered glycocalyx, the cell-associated carbohydrate layer, and interrogates the molecular mechanism responsible for its upregulation, which is hypothesized to act through NCoR2 and Notch. Overview of Approach: Proposed work tests a functional link between Notch and NCoR2 signaling and elucidates whether their combined action synergistically drives deposition of high levels glycoproteins at the cell surface which can in turn drive integrin and notch activation by biophysical means to modify survival, invasion, and treatment resistance. Techniques such as traction force, scanning angle interference, TIRF, second harmonic generation, spinning disc, and laser confocal microscopies will be used to characterize the biophysical properties of WT human GBM cells as well those with modified NCoR2 or Notch. To interrogate the mechanism sustaining these stem-like properties in vitro, genetic engineering of GBM cells and biomaterial engineering strategies will be used. Orthotopic xenograft mouse models of human GBMs will be employed to test the effectiveness of targeting NCoR2-Notch-glycocalyx circuitry in vivo.
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Glycocalyx and NCOR2-Notch-Mediated Stemness in Glioblastoma Aggressiveness
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