Role of excess glycogenolysis in fasting hyperglycemia in obesity-associated T2DM
Role of excess glycogenolysis in fasting hyperglycemia in obesity-associated T2DM
批准号:
7590345
负责人:
EUNSOOK JIN
金额:
$8.65万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-04-01 至 2011-03-31
关键词:
AccountingAdenovirusesAgeAnimal ModelAnimalsAutomobile DrivingClinicalDataData AnalysesDevelopmentDiabetes MellitusDiagnosisDietDiseaseEpidemicEsterified Fatty AcidsEuglycemic ClampingFastingFatty acid glycerol estersFutureGluconeogenesisGlucoseGlucose ClampGlycerolGlycogenGlycogenolysis InhibitionGoalsHepaticHomeostasisHumanHydrolysisHyperglycemiaImageImpairmentIndividualInsulin ResistanceLabelLearningLinkLipidsLipolysisLiverLiver FailureLiver GlycogenMediatingMetabolicMetabolic DiseasesMetabolismNMR SpectroscopyNon-Insulin-Dependent Diabetes MellitusObesityPathway interactionsPatientsPatternPharmaceutical PreparationsPhosphorylationPhysiologyPrincipal InvestigatorProtein phosphataseProtocols documentationReportingResearchResearch Project GrantsRodent ModelRoleSourceSprague-Dawley RatsStagingSystemTechnologyTracerZucker Ratscarbohydrate metabolismdiabeticglucose productionglycemic controlglycogen metabolismglycogenolysishuman datain vivoinstrumentlipid metabolismlong chain fatty acidmethod developmentoverexpressionpreventprogramsresearch studyskillsstable isotopetraining project
中文摘要
描述(由申请人提供):
2型糖尿病(T2 DM)正在流行,威胁着数以百万计的人,它的增加与世界范围内肥胖的迅速增加密切相关。胰岛素抵抗可能在糖尿病发作前几十年就开始了,这在肥胖者中很常见。我的长期研究目标是找到胰岛素抵抗的主要原因(S),并阐明T2 DM的葡萄糖-脂肪代谢相互作用,这对于制定预防糖尿病发病的策略和找到治愈或更好的疾病治疗方法至关重要。诊断糖尿病的关键临床观察是空腹高血糖。肝脏葡萄糖过量生产导致空腹高血糖,但关于糖原分解和糖异生在T2 DM中的作用,有争议的数据报道。最近,我发现在肥胖相关的T2 DM啮齿动物模型中,禁食保存的肝糖原会导致过度的糖原分解,进而导致空腹高血糖。这一观察结果对于了解肥胖T2 DM患者的肝糖自动调节失败具有重要意义,因为肥胖者和T2 DM患者的空腹肝糖原均有增加。过量的肝糖原可能在空腹高血糖中起关键作用,因为内源性葡萄糖的产生对可用于水解的肝糖原的量很敏感。在这项提案中,将在动物模型和人类受试者中评估肥胖和肥胖相关的T2 DM患者的肝脏代谢变化。针对肝糖原对肥胖相关T2 DM患者短期高脂饮食诱导的肝脏胰岛素抵抗和糖脂代谢相互作用进行评估。将确定抑制过度糖原分解是否改善肥胖相关的T2 DM患者的空腹高血糖。先进成像研究中心率先开发了评估体内全面代谢通量的方法,并通过同时给予稳定同位素示踪剂来研究中间代谢。高场核磁共振(核磁共振)波谱和核磁共振(MR)波谱技术将被用于执行拟议的研究项目。
英文摘要
DESCRIPTION (provided by applicant):
Type 2 diabetes mellitus (T2DM) is getting epidemic threatening millions of people and its increase is tightly related with the rapid increase of obesity throughout the world. Insulin resistance may proceed decades before the onset of diabetes and it is common in obese individuals. My long term goal in research is finding primary cause(s) of insulin resistance and elucidating glucose-fat metabolic interactions in T2DM, which are essential for strategy development to prevent the onset of diabetes and to find a cure or better treatments for the disease. A key clinical observation for the diagnosis of diabetes is fasting hyperglycemia. Hepatic glucose overproduction contributes to fasting hyperglycemia, but controversial data have been reported about the roles of glycogenolysis and gluconeogenesis in T2DM. Recently I found that preserved liver glycogen in fasting resulted in excess glycogenolysis, and subsequently contributed to fasting hyperglycemia in the rodent models of obesity-associated T2DM. This observation could be important in understanding the failure of hepatic glucose auto-regulation in obese T2DM patients because increased hepatic glycogen in fasting was reported in obese humans and T2DM patients. The excess liver glycogen could be critical in fasting hyperglycemia because endogenous glucose production is sensitive to the amount of hepatic glycogen available for hydrolysis. In this proposal, liver metabolic changes in obesity and in obesity-associated T2DM will be evaluated in animal models and in human subjects. Hepatic insulin resistance induced by short high-fat diet and glucose-fat metabolic interaction in obesity-associated T2DM will be evaluated focusing hepatic glycogen. It will be determined if the inhibition of excess glycogenolysis improves fasting hyperglycemia in obesity-associated T2DM. The Advanced Imaging Research Center has pioneered in method development to evaluate comprehensive metabolic fluxes in vivo and to study intermediary metabolism using simultaneous administration of stable isotope tracers. The technologies with high field nuclear magnetic resonance (NMR) spectroscopy and magnetic resonance (MR) spectroscopy will be adapted in performing proposed research projects.
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会议论文
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