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Unraveling glutamine metabolism in gliomas by PET imaging and biochemical methods

Unraveling glutamine metabolism in gliomas by PET imaging and biochemical methods
通过 PET 成像和生化方法揭示神经胶质瘤中的谷氨酰胺代谢
批准号:
8790433
负责人:
Sriram Venneti
金额:
$14.05万
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:
2014-10-20 至 2019-01-31
关键词:
ATP Synthesis PathwayAddressAdultAdvisory CommitteesAmino AcidsAnatomyAnimal ModelAnimalsApplications GrantsBiochemicalBioenergeticsBiometryBrain NeoplasmsBrain imagingCell LineCellsCitric Acid CycleClinicalCollaborationsDataDetectionDevelopmentDevelopment PlansDiagnosisDiagnosticDiagnostic ImagingEnergy-Generating ResourcesEnzymesEpidermal Growth Factor ReceptorExhibitsFellowshipFigs - dietaryFumaratesFundingGeneticGlioblastomaGliomaGlutamate DehydrogenaseGlutaminaseGlutamineGoalsGrantGrowthHealthHypoxiaImageImplantIn VitroIsocitrate DehydrogenaseKnockout MiceKnowledgeLabelLipidsMalatesMalignant - descriptorMalignant NeoplasmsMemorial Sloan-Kettering Cancer CenterMentorsMetabolicMetabolic PathwayMetabolismMethodsModalityMonitorMusMutationNon-Invasive Cancer DetectionNutrientOncogenesPDGFRA genePI3K/AKTPTEN genePathogenesisPathologyPathway interactionsPennsylvaniaPhysiciansPlasmaPlayPositron-Emission TomographyProductionProliferatingProteinsRadiationResearchResearch EthicsResearch PersonnelRoleScientistSensitivity and SpecificitySignal TransductionSpecificityTestingTherapeuticTimeTrainingTraining and EducationTranslatingTreatment EfficacyTumor BiologyTumor PathologyUniversitiesWorkWritingcancer cellcancer typecareercareer developmentchemotherapycollaborative environmentcombatdesigneffective therapyfluorodeoxyglucoseglioma cell lineglutamine analogimaging modalityin vivoinsightmacromoleculemembermouse modelneuroinflammationneuropathologynon-invasive imagingnovelnutrient metabolismoutcome forecastprogramsresearch studytherapeutic targettumortumor metabolismuptake

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DESCRIPTION (provided by applicant): This proposal describes a 5-year career development plan with the goal of enabling Dr. Sriram Venneti to advance to the role of independent academic investigator and physician-scientist. Dr. Venneti has completed his clinical training in Anatomic Pathology and Neuropathology at the University of Pennsylvania and is currently engaged in a research fellowship at Memorial Sloan-Kettering Cancer Center (MSKCC). Dr. Craig Thompson, an internationally recognized expert on cancer metabolism with a strong record of training clinician- scientists, will be the principle mentor. Dr. Eric Holland, renowned or his work in gliomas, and Dr. Jason Lewis, an expert in positron emission tomography (PET) imaging in cancer, will serve as co-mentors. Additionally, members of the advisory committee will provide scientific and career development guidance. This project builds on Dr. Venneti's previous research expertise and proposes further training in cancer metabolism, small animal PET imaging, brain tumor biology, research ethics, grant writing and biostatistics, by means of investigative research and formal course work. MSKCC has a rich and collaborative environment, and a strong institutional commitment to its trainees. At a minimum, Dr. Venneti will be provided with 75% protected research time. MSKCC thus provides the ideal setting for Dr. Venneti to carry out this program to transition to an independently funded academic scientist. The goal of this research is to unravel core metabolic pathways that gliomas use to survive and proliferate and to use this knowledge to develop more effective therapeutic strategies and diagnostic imaging modalities. Glutamine is the most abundant amino acid in the body and is an essential source of energy and macromolecules in many types of cancer; however, how glutamine is metabolized in gliomas driven by aberrant PI3K/AKT pathway activation (such as downstream of PDGFRA amplification and PTEN loss) or isocitrate dehydrogenase 1 (IDH1) mutations is not clearly understood. We address this significant gap in our knowledge by proposing the overall hypothesis that glutamine metabolism is central to the pathogenesis of gliomas and that 18fluorine-labeled glutamine (18F-FGln) can be used to image gliomas in vivo using PET. Three specific aims will test this hypothesis. (1) Glutamine uptake will be evaluated in vivo using PET imaging with the glutamine analogue 18F-FGln in glioma animal models with PDGFRA amplification/PTEN loss or IDH1 mutations. (2) Glutamine metabolism will be determined in glioma cells lines bearing endogenous PDGFRA amplification/PTEN loss or IDH1 mutations. (3) Inhibition of glutamine metabolism by targeting the enzymes glutaminase and glutamate dehydrogenase will be evaluated as a viable therapeutic target for combatting gliomas with PDGFRA amplification/PTEN loss or IDH1 mutations in vitro and in vivo. These three aims together will enable development of a novel, non-invasive PET imaging modality to image glutamine metabolism in gliomas in vivo and to ascertain the role played by glutamine metabolism in the pathogenesis of gliomas, so as to create more effective ways to treat these deadly tumors.
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