CNS Circuits Mediating Estrogenic Regulation on Energy and Glucose Homeostasis
CNS Circuits Mediating Estrogenic Regulation on Energy and Glucose Homeostasis
批准号:
8534338
负责人:
YONG XU
金额:
$5.7万
依托单位国家:
美国
项目类别:
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-27 至 2014-08-31
关键词:
AddressAdverse effectsAgonistAmericanAmygdaloid structureAnimalsArtsBody WeightBrainBrain regionBreastCardiovascular DiseasesCessation of lifeCholine O-AcetyltransferaseCoupledCytoplasmDevelopmentDiabetes MellitusEatingEnergy MetabolismEquilibriumEstradiolEstrogen Receptor 2Estrogen ReceptorsEstrogen Replacement TherapyEstrogen TherapyEstrogensEtiologyEventExclusionFatty acid glycerol estersFeeding behaviorsFemaleFunctional disorderGene TargetingGenesGlucoseGlucose IntoleranceGonadal Steroid HormonesGrantHeart DiseasesHomeostasisHormone replacement therapyHyperphagiaHypothalamic structureIndividualInsulinLeadMalignant NeoplasmsMediatingMediator of activation proteinMelanocortin 4 ReceptorMenopauseMetabolicMethodsMindModelingMusNeuronsNon-Insulin-Dependent Diabetes MellitusNuclearObesityOvarian hormoneOverweightPeripheralPhenotypePhysical activityPlayPopulationPostmenopausePrevalencePropertyProsencephalonProtein IsoformsRecruitment ActivityRegulationReplacement TherapyResearchRiskRisk FactorsRoleSeriesSignal PathwaySignal TransductionSiteStructureSystemTechnologyTestingTissuesWomanblood glucose regulationbrain cellcombatdesigndiabeticeffective therapyfeedingglobal healthheart disease riskimprovedinsulin sensitivitymalemalignant breast neoplasmmouse modelmutantneural circuitnovelprematureprogramsreceptorrelating to nervous systemresearch studyrestorationtranscription factortreatment strategy
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Obesity is a major risk factor for type II diabetes and cardiovascular disease and increased understanding of body weight regulation may lead to effective strategies to combat obesity and diabetes. The sex hormone, estrogen, plays a beneficial role in maintaining normal body weight and glucose balance as women show dramatically increased risks for developing obesity and diabetes when they enter menopause. Hormone replacement therapy may be a way to reduce these risks, but actions of estrogen via its receptors in the peripheral tissues cause unwanted effects, such as cancer and heart disease. Evidence indicates that estrogen acts in the brain to reduce body weight and improve glucose profile, but the mechanisms underlying these beneficial effects are not fully understood. To this end, three objectives will be pursued in the current grant. (1) It has been shown that estrogen suppresses food intake and improves glucose balance by acting upon one estrogen receptor isoforms, ER1, present in a subset of brain cells, namely POMC neurons. However, the downstream neural circuits recruited by these POMC neurons to mediate effects of estrogen remain unknown. Mouse models will be generated in which melanocortin 4 receptor (MC4R), the receptor for the POMC product, will be re-expressed in two distinct site of the brain at the null background. These models will be used to determine if MC4R in these sites is sufficient to mediate anorexigenic and anti-diabetic effects of estrogen. (2) Actions of ER1 in another population of brain cells (SF1 neurons) are shown to increase energy expenditure, but the intracellular signaling initiated by ER1 to achieve this regulation are unclear. Mice with FoxO1 deleted only in SF1 neurons will be used to determine if FoxO1 in SF1 neurons is required to mediate estrogenic effects on energy expenditure. (3) Finally, the functions of ER1 in other brain sites will be examined. Mice will be generated with ER1 deleted only in a forebrain structure, amygdala. These mice will be used to determine if ER1 in the amygdala provides redundant mechanisms to regulate energy and glucose balance. Thus, the proposed study will not only advance our understanding about the mechanisms by which sex hormone regulates brain functions to provide a coordinated regulation of body weight and glucose, but also help identify rational targets for developing more specific estrogen therapies that provide metabolic benefits with no or fewer side effects.
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依托单位:
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海外基金