Role of Slc2a2/Glut2 in Embryo and Stem Cell Metabolism, Self-Renewal, and Pathways Involved in Diabetic Embryopathy
Role of Slc2a2/Glut2 in Embryo and Stem Cell Metabolism, Self-Renewal, and Pathways Involved in Diabetic Embryopathy
批准号:
8913593
负责人:
MARY R LOEKEN
金额:
$53.31万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-04-01 至 2019-01-31
关键词:
AdoptedAdverse effectsAmino SugarsBeta CellBiochemicalBiological AssayBlood CirculationBlood GlucoseCell RespirationCellsChemicalsCongenital AbnormalityDevelopmentDiabetes MellitusDisadvantagedES Cell LineEmbryoEmbryonic DevelopmentEnvironmentFrequenciesFructoseGLUT2 geneGene ExpressionGenesGlucosamineGlucoseGlucose TransporterGlutamineGlycolysisGlycoproteinsGrowthHepatocyteHexosaminesHumanHyperglycemiaIntestinesKidneyLacZ GenesLiverMediatingMetabolicMetabolic PathwayMetabolismMethodsMolecularMouse StrainsMusMutationNeural Tube ClosureNeuronsOxidative StressPAX3 genePancreasPathway interactionsPhosphorylationPlayPregnancyPregnancy in DiabeticsProcessProtein GlycosylationRegulationRoleStagingStem cellsSystemTestingTherapeutic InterventionTissuesUndifferentiatedblastocystdiabeticdiabetic embryopathyembryo cellembryonic stem cellglucose metabolismglucose transportglucose uptakeglycosylationimprovedin vivoinduced pluripotent stem cellinhibitor/antagonistmutantneuroepitheliumpluripotencypublic health relevanceresearch studyresponseself-renewalsmall hairpin RNAsolutestemnessuptakevector
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Mouse embryos express Slc2a2 early during pre-and postimplantation development. Slc2a2 encodes at high KM (~16 mM) glucose transporter, Glut2, which is expressed by pancreatic ß cells, the liver, kidney, and intestine. Pre- and early postimplantation embryos also express Slc2a1 and Slc2a3, which encode the low KM (~5 mM) glucose transporters, Glut1 and Glut3, respectively. Because embryos would normally be exposed to glucose concentrations from maternal circulation that are near the KM's of Glut 1 and 3, it is expected that they are the predominant glucose transporters under normal circumstances. However, during diabetic pregnancy, blood glucose concentration could approach or surpass the KM of Glut2. We have shown that Slc2a2+/- and Slc2a2-/- embryos are protected from congenital malformations induced by maternal hyperglycemia. However, Glut2 may be important during normal development because functions as a low KM (0.8 mM) glucosamine (GlcN) transporter. We speculated that Glut2 is important for early embryo survival to facilitate GlcN transport from maternal circulation. However, this is difficult to study using i vivo systems. Embryonic stem cells (ESC) that can be differentiated into particular tissue lineages can be very useful to study molecular regulation of embryogenesis. We have used murine ESC that can be induced to form neuronal precursors (NPs) to study pathways that are activated by increased glucose metabolism in embryonic neuroepithelium. A limitation of most existing ESC lines is that they do not express Glut2. We recently showed that ESC isolated in low glucose (100 mg/dl or 5.5 mM) media (called, LG-ESC) express a functional Glut2 transporter and display the same biochemical and gene expression responses to high glucose culture as does the embryo. Using LG-ESC, we have found that Glut2-mediated GlcN transport stimulates ESC self-renewal and anabolic metabolism, and that a pathway that we had found to be regulated by excess glucose metabolism and associated with congenital malformations regulates Slc2a2 expression. The central hypothesis for this proposal is that exogenous GlcN transported by Glut2 promotes proliferation and pluripotency of embryo and stem cells by increasing substrates to drive anabolic metabolism, and that Glut2-mediated GlcN transport is important, not just in naïve, undifferentiated cells, but also as they begin to adopt a fate, suchas neuroepithelium; further diabetic embryopathy may in part be due to glucose competition for GlcN uptake. We will test this using LG-ESC, including LG-ESC lines that were established from mouse strains with mutations in gene pathways that are involved in diabetic embryopathy (Aim 1); by testing whether human induced pluripotent stem cells (iPSC) generated in a low glucose environment express SLC2A2, and are respond to exogenous GlcN to promote anabolic metabolism, self-renewal, and pluripotency (Aim 2); by determining whether Glut2-deficient embryos have a survival disadvantage to due insufficient GlcN uptake and metabolism.
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Embryonic Gene Expression During Diabetic Embryopathy
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批准号:8004610
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项目类别:
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资助金额:$10.53万
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财政年份:2009
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负责人:MARY R LOEKEN
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依托单位:
EFFECT OF HYPERGLYCEMIA ON NEURALATING MOUSE EMBRYOS
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批准号:7953823
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EFFECT OF HYPERGLYCEMIA ON NEURALATING MOUSE EMBRYOS
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项目类别:
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MOLECULAR REGULATION: EMBYROGENESIS BY METABOLIC STRESS
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MOLECULAR REGULATION: EMBYROGENESIS BY METABOLIC STRESS
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资助金额:$24.98万
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负责人:MARY R LOEKEN
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MOLECULAR REGULATION: EMBYROGENESIS BY METABOLIC STRESS
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Embryonic Gene Expression During Diabetic Embryopathy
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Embryonic Gene Expression During Diabetic Embryopathy
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Embryonic Gene Expression During Diabetic Embryopathy
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Embryonic Gene Expression During Diabetic Embryopathy
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Embryonic Gene Expression During Diabetic Embryopathy
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Embryonic Gene Expression During Diabetic Embryopathy
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依托单位:
Embryonic Gene Expression During Diabetic Embryopathy
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依托单位:
Embryonic Gene Expression During Diabetic Embryopathy
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资助金额:$35.5万
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Embryonic Gene Expression During Diabetic Embryopathy
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负责人:MARY R LOEKEN
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SEARCH FOR THE MOLECULAR CAUSES OF DIABETIC EMBRYOPATHY
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负责人:MARY R LOEKEN
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Search for the Molecular Causes of Diabetic Embryopathy
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