Small molecule approaches to studying tumor metabolism
Small molecule approaches to studying tumor metabolism
批准号:
9224236
负责人:
Michael Edward Pacold
金额:
$15.12万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2020-08-31
关键词:
AnabolismAntimetabolitesAttenuatedBindingBiologicalCancer cell lineCarbonCell LineCellsClinicClinical TrialsDevelopmentElectron TransportEnsureEnzyme Inhibitor DrugsEnzymesEstrogen receptor negativeFamilyFamily SizesFeedbackGeneticGlycine HydroxymethyltransferaseGrowthHumanIn VitroIsocitrate DehydrogenaseLaboratoriesLibrariesMalignant NeoplasmsMass Spectrum AnalysisMediatingMetabolicMetabolic PathwayMetabolismMetabolite InteractionModelingMolecularNucleotide BiosynthesisNucleotidesOxidoreductasePathway interactionsPatientsPharmaceutical PreparationsPhospho-Specific AntibodiesPhosphoglycerate dehydrogenasePhosphoserinePhosphotransferasesProductionProteinsReactionRecording of previous eventsRegulationRoleSerineSolidTechniquesTestingToxic effectTreesUltrafiltrationWorkcancer therapyenzyme activityimprovedin vivoinhibitor/antagonistkinase inhibitorknock-downmalignant breast neoplasmmouse modelmutantneoplastic cellnovelnovel therapeuticsnucleotide metabolismoverexpressionoxidoreductase inhibitorphosphoproteomicspreventprotein metabolitesmall moleculesmall molecule inhibitortooltumortumor metabolismwasting
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英文摘要
Project Summary / Abstract
It has long been known that tumor cells rewire their metabolism to ensure proliferation and survival. Emerging
genetic evidence has demonstrated the importance of many metabolic enzymes in supporting cancer
metabolism, in particular the oxidoreductases, which catalyze electron transfer reactions and are the largest
family of metabolic enzymes. Yet, the metabolites that bind and regulate this class of metabolic enzymes are
not fully characterized, and there are no small molecule inhibitors for the majority of the oxidoreductases.
Because there is an oxidoreductase in nearly every metabolic pathway, small molecule inhibitors of the
oxidoreductases would be useful for studying the role of metabolism in a variety of tumor models.
As a starting point for targeting the oxidoreductases, we have developed inhibitors of 3-phosphoglycerate
dehydrogenase (PHGDH), the first enzyme in the serine biosynthesis pathway, and shown that these
compounds are selectively toxic towards PHGDH-dependent, estrogen receptor-negative cell lines, even in the
presence of exogenous serine. These compounds prevent the incorporation of both endogenously produced
and exogenous serine, via one-carbon units, into nucleotides needed for proliferation, implying that serine
synthesis not only controls the production but also the fate of serine-derived one-carbon units needed for
biosynthesis. While this may account for the toxicity of PHGDH knockdown or inhibition in the presence of
abundant exogenous serine, the mechanism by which serine synthesis pathway activity ensures the availability
of one-carbon units for biosynthesis is unknown.
In this proposal, building on my previous work, we will test the hypothesis that a serine synthesis pathway
metabolite coordinates the fate of one-carbon units (Aim 1), and define the spectrum of endogenous
metabolites that bind and regulate the oxidoreductases and other metabolic enzymes (Aim 2). To extend
extend the techniques used to target PHGDH to other oxidoreductases, we will build tools to enable the
systematic discovery of oxidoreductase inhibitors (Aim 3). Compounds emerging from these efforts will
advance our mechanistic understanding of metabolism in a variety of cellular contexts, and might serve as
proof of concept for the development of novel antimetabolites.
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Small molecule approaches to studying tumor metabolism
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批准号:9750086
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项目类别:
-
资助金额:$15.12万
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财政年份:2017
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负责人:Michael Edward Pacold
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依托单位:
海外基金