Selenoproteins and Selenium-dependent Redox Signaling Alter Diabetes Risk
Selenoproteins and Selenium-dependent Redox Signaling Alter Diabetes Risk
批准号:
9272418
负责人:
Juan Cui
金额:
$22.65万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
AddressAdverse effectsAnimal ModelAntioxidantsAreaAwardBiochemicalBiological ProcessBiologyCell LineCellsCellular biologyChemopreventive AgentClinical TrialsConflict (Psychology)CountryDataDevelopmentDiabetes MellitusDietDietary ComponentDietary SeleniumGlucoseGoalsHealthHealth BenefitHomeostasisHousekeepingHumanHydrogen PeroxideHyperinsulinismIncidenceIndividualInsulinInsulin ReceptorInsulin Signaling PathwayIntakeKnockout MiceLaboratoriesLinkMammalsMediatingMediator of activation proteinMentorsMethodsMicronutrientsMidwestern United StatesMissionModificationMolecularNebraskaNon-Insulin-Dependent Diabetes MellitusOutcomeOverdoseOvernutritionOxidation-ReductionOxidative StressOxidoreductasePTEN genePTPN1 genePeroxidasesPhenotypePhosphoric Monoester HydrolasesPlantsPlasmaPlayPopulationProductionProtein FamilyProtein Tyrosine PhosphataseProteinsPublicationsRegulationReportingReproductionResearchRiskRoleSeleniumSelenocysteineSignal PathwaySignal TransductionSignaling MoleculeSoilSourceStudy modelsSulfhydryl CompoundsSupplementationSystemTransgenic MiceUnited StatesVariantWorkYeastsbiological adaptation to stressblood glucose regulationcancer preventiondiabetes riskdiabetogenicdietary supplementsdisorder preventionexperienceexperimental studyglutathione peroxidaseimmune functioninsightinsulin sensitivityinsulin signalingmalemouse modelnovelobesity preventionoxidationselenium deficiencyselenoprotein
中文摘要
硒(Se)是哺乳动物必需的微量营养素,在动物体内发挥作用
英文摘要
Selenium (Se) is an essential micronutrient in mammals tiiat exerts its function in the context of
selenocysteine-containing proteins. The group of selenoproteins is represented by more than 50 protein
families; however, they all appear to contribute to antioxidant and redox regulation by being selenoprotein
forms of thiol oxidoreductases. The human selenoproteome consists of 25 selenoproteins which are
involved in protection against oxidative stress, signal transduction, and the folding, modification, and
regulation of proteins. Selenoprotein expression depends on dietary Se content. Intriguingly, recent
clinical trials suggest that Se over-nutrition may significantly raise the risk of type 2 diabetes
development. Subsequent studies involving mouse models demonstrated that low and high Se intake are
both associated with the type 2 diabetes-like phenotype; however, specific mechanisms of this
phenomenon have not been investigated. Different regions of the world are characterized by significant
variations in Se content in soil and the associated variation in dietary Se content. Many regions of the
United States are Se-rich, and the United States population is characterized by high levels of Se in
plasma and, therefore, may have increased risk of diabetes development. In addition, the use of Se-rich
dietary supplements in such areas may have a negative impact on health and increase the incidence of
diabetes. The goal of this project is to investigate the roles of Se and selenoproteins in redox regulation
of glucose homeostasis. The central hypothesis is that Se regulates selenoprotein synthesis which, in
turn, alters redox homeostasis and influences the insulin signaling pathways. Specifically, Dr. Fomenko
will define the effects of Se supplementation on redox-dependent insulin signaling. This work will be
guided by two specific aims: (1) identify mechanisms underlying Se-dependent type 2 diabetes
development; and (2) assess the contribution of selenoproteins to H2O2 signaling and associated control
of glucose homeostasis. These aims will be addressed using a combination of biochemical and cell
biology studies and animal models. The proposed study fits with the mission of the Nebraska Center for
the Prevention of Obesity Diseases through Dietary Molecules (NPOD) and will help identify mechanisms
of Se micronutrient-associated diabetes development. NPOD support, facilities, and mentoring will allow
Dr. Fomenko to advance this project toward an independent R01 award and achieve his long-term
research goals in Se biology.
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Selenoproteins and Selenium-dependent Redox Signaling Alter Diabetes Risk
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批准号:8904680
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项目类别:
-
资助金额:$22.77万
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财政年份:--
-
负责人:Juan Cui
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依托单位:
海外基金