Novel pathways for fat burning that protects from high fat diet-induced metabolic
Novel pathways for fat burning that protects from high fat diet-induced metabolic
批准号:
9133360
负责人:
Sihem Boudina
金额:
$32.41万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-16 至 2018-08-31
关键词:
AddressAdipocytesAdipose tissueAdolescentAdoptionAdultAffectAnimalsBody fatBrown FatBurn injuryCardiovascular DiseasesCell physiologyChildCommunicationCountryCoupledDevelopmentDiabetes MellitusDietDiseaseEnergy MetabolismEnzymesEpidemicExhibitsFatty LiverFatty acid glycerol estersFoodGlucose IntoleranceGoalsHealthHigh Fat DietHomeostasisHumanHydrogen PeroxideInsulin ResistanceIntakeIonsLeptinLipolysisLiverMediatingMetabolicMetabolic syndromeMetabolismMitochondriaMitochondrial MatrixMusNonesterified Fatty AcidsNutrientObesityOxidation-ReductionOxidative PhosphorylationOxidative StressPathogenesisPathway interactionsProductionProteinsPublic HealthRegulationResearchRisk FactorsRoleSOD2 geneSkeletal MuscleSuperoxidesTestingTissuesUnited Statesblood glucose regulationcostfatty acid oxidationfeedingimprovedin vivoinsightinsulin secretioninsulin sensitivitylipid biosynthesismouse modelnoveloxidationresponsesedentary lifestylestatistics
中文摘要
描述(由申请人提供):
美国的肥胖率正在上升,最近的统计数据估计,超过35.7%的成年人和16.9%的儿童和青少年被认为肥胖。肥胖是胰岛素抵抗、代谢综合征和心血管疾病的危险因素。尽管肥胖症对公众健康很重要,但其发病机制尚不清楚。肥胖的人类和动物的脂肪组织中的氧化应激增加是由于营养摄入过多而被记录在案的。然而,脂肪氧化应激在肥胖发病机制中的作用及其相关的代谢改变尚不清楚。为了解决这个问题,我们通过缺失锰超氧化物歧化酶(MnSOD)产生了脂肪细胞中超氧化物歧化增加的小鼠,锰超氧化物歧化酶是负责将线粒体基质中的超氧化物解毒为过氧化氢的唯一酶。脂肪细胞特异性MnSODKO(AdSod2KO)小鼠身材瘦削,能增加全身脂肪氧化,抵抗饮食诱导的葡萄糖耐量、胰岛素抵抗和肝脏脂肪变性。这项建议的首要目标是阐明AdSod2KO小鼠因HFD而增加脂肪氧化和改善代谢稳态的机制。这项建议有两个具体目标:特定目标1将确定脂肪细胞MnSOD缺失和/或氧化应激促进全身脂肪氧化的潜在机制。在这一目标下,我们将首先确定白色和棕色脂肪组织、肝脏和骨骼肌在促进全身脂肪氧化中的贡献,然后研究全身脂肪氧化的增加是由脂肪酸的线粒体偶联氧化还是非偶联氧化引起的,最后确定氧化还原依赖的机制可以增加白色脂肪组织的脂肪酸氧化。特定目标2将确定成熟脂肪细胞中MnSOD缺失和/或增强的氧化应激对HFD诱导的小鼠葡萄糖耐受、胰岛素抵抗和肝脏脂肪变性的保护作用的组织特异性机制。在这一目标下,我们将研究脂肪细胞锰超氧化物歧化酶缺失是否影响脂肪分解,确定脂肪细胞锰超氧化物歧化酶缺失和/或氧化应激是否在高脂饮食和�细胞功能期间增强全身胰岛素敏感性,并识别已知和未知的脂肪分泌因素,这些因素可能在AdSod2KO小鼠饲养HF期间对代谢产生有益的全身影响。这些研究对肥胖的研究具有很高的影响,因为它为脂肪组织氧化应激及其对全身能量代谢和胰岛素敏感性的影响提供了一个新的范式。我们相信,这项研究将为新陈代谢的氧化还原调节提供新的见解,并可能确定新的靶点,这些靶点可以被调节以增强全身脂肪氧化,并防止肥胖期间发生胰岛素抵抗和糖尿病。
英文摘要
DESCRIPTION (provided by applicant):
Obesity rates are increasing in the United States, with recent statistics estimating more than 35.7% of adults and 16.9% of children and adolescents are considered obese. Obesity is a risk factor for insulin resistance, the metabolic syndrome and cardiovascular disease. Despite its public health importance, the pathogenesis of obesity is not well understood. Increased oxidative stress in adipose tissue of obese humans and animals in response to excess nutrient intake has been documented. However, the role of adipose oxidative stress in the pathogenesis of obesity and its associated metabolic alterations in not understood. To address this, we generated mice with increased superoxide production in adipocytes through deletion of manganese superoxide dismutase (MnSOD), the sole enzyme responsible for detoxifying superoxide to hydrogen peroxide in the mitochondrial matrix. The adipocyte- specific MnSOD KO (AdSod2KO) mice are lean, have increased whole body fat oxidation and resist diet-induced glucose intolerance, insulin resistance and hepatic steatosis. The overarching goal of this proposal is to elucidate the mechanisms underlying enhanced fat oxidation and improved metabolic homeostasis in response to HFD in AdSod2KO mice. This proposal has two specific aims: Specific Aim 1 will identify the underlying mechanisms by which adipocyte MnSOD deletion and/or oxidative stress enhanced whole body fat oxidation. Under this aim, we will first determine the contribution of white and brown adipose tissue, liver and skeletal muscle in enhancing whole body fat oxidation, then investigate whether the increase in whole body fat oxidation results from coupled or uncoupled mitochondrial oxidation of fatty acid and finally identify redox-dependent mechanisms that can increase fatty acid oxidation in white adipose tissue. Specific Aim 2 will determine tissue-specific mechanisms by which MnSOD deletion and/or enhanced oxidative stress in mature adipocytes protects against HFD-induced glucose intolerance, insulin resistance and hepatic steatosis in mice. Under this aim, we will examine whether adipocyte MnSOD deletion affects lipolysis, determine if adipocyte MnSOD deletion and/or oxidative stress enhance whole body insulin sensitivity during HFD and �-cell function and identify known and unknown adipose-secreted factors that could mediate the beneficial systemic effect on metabolism during HF feeding in AdSod2KO mice. These studies have high impact on obesity research as it provides a new paradigm for adipose tissue oxidative stress and its impact on whole body energy metabolism and insulin sensitivity. We believe that this research will provide new insights on the redox-regulation of metabolism and could identify new targets that could be modulated to enhance whole body fat oxidation and protects from the development of insulin resistance and diabetes during obesity.
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Novel pathways for fat burning that protects from high fat diet-induced metabolic
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批准号:8632675
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资助金额:$32.41万
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负责人:Sihem Boudina
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Novel pathways for fat burning that protects from high fat diet-induced metabolic
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项目类别:
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资助金额:$32.41万
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财政年份:2013
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负责人:Sihem Boudina
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依托单位:
国内基金
海外基金
支链氨基酸代谢紊乱调控“Adipocytes - Macrophages Crosstalk”诱发2型糖尿病脂肪组织功能和结构障碍的作用及机制
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批准号:81970721
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项目类别:面上项目
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资助金额:55.0万元
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批准年份:2019
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负责人:陶凌
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依托单位: