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The role of caveolae & insulin signaling in CNS insulin transport

The role of caveolae & insulin signaling in CNS insulin transport
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批准号:
8392758
负责人:
Gregory Kee-Pum Hong
金额:
$5.77万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-07-01 至 2013-06-30

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中文摘要
翻译
描述(由申请人提供):2型糖尿病(DM2)及其与代谢紊乱(如肥胖)的关联是一个巨大的公共卫生负担,迫切需要额外的治疗方法(34)。从历史上看,DM2代谢紊乱的特征被归因于胰岛素对目标组织(如肌肉、肝脏和脂肪)作用的缺陷。越来越多的证据表明,中枢神经系统(CNS)是胰岛素调节能量平衡的关键靶器官。中枢神经系统胰岛素作用缺陷导致嗜食、体重增加和肝糖生成失调(42)。胰岛素在任何组织中的作用都依赖于胰岛素从血液中通过内皮顺利转运到靶器官;在骨骼肌中,这种跨内皮转运是胰岛素作用的关键限速步骤(9)。现在看来,胰岛素通过骨骼肌内皮细胞之间的相互作用
英文摘要
DESCRIPTION (provided by applicant): Type 2 diabetes mellitus (DM2) and its association with metabolic derangements such as obesity represent an enormous public health burden for which additional therapies are desperately needed (34). Historically, the metabolic derangements characteristic of DM2 were attributed to defects in insulin action on target tissues such as muscle, liver, and fat. Accumulating evidence now implicates the central nervous system (CNS) as a key insulin target organ in the modulation of energy balance. Defects in CNS insulin action result in hyperphagia, weight gain, and dysregulated hepatic glucose production (42). Insulin action in any tissue is dependent on successful transport of insulin from the bloodstream across the endothelium into the target organ; in skeletal muscle this transendothelial transport functions as the critical rate limiting step in insulin action (9). It nw appears that insulin traverses the endothelial cell of skeletal muscle via interactions between the insulin receptor (IR) and caveolae (55), plasma membrane invaginations import for signaling and transport (40). Furthermore this transport is dependent on functional signaling through the IR (56). Historical data suggests that insulin entry into the brain occurs via IR-mediated transendothelial transport (5, 14, 48). However the exact mechanism insulin uses to cross the endothelial cells of the CNS, which form a different endothelial-tissue barrier than those in skeletal muscle (59), remains unexamined. The following strategies will be used to test the hypothesis that insulin transendothelial transport in the CNS occurs via caveolae-mediated process dependent on functional insulin signaling. First, physical interactions between the IR and caveolin-1, the key component protein of caveolae, will be examined using protein-protein interaction studies as well as microscopy based colocalization studies in whole brain, isolated brain microvessels, and primary rat brain endothelial cells. Rat brain endothelial cell lines as well as primary rat brain endothelial cells will then be employed to determine if insulin uptake into endothelial cells is affected by inhibitors of caveolae formation or inhibitors of insulin signaling. Completion of these experiments will increase understanding of CNS insulin transport mechanisms. These mechanisms can then be further explored in future experiments in animal models of diabetes and obesity. As CNS insulin action is critical for controlling weight and energy balance, these transport mechanisms will likely represent attractive future pharmacologic targets in the treatment of obesity and DM2. PUBLIC HEALTH RELEVANCE: Type 2 diabetes represents a significant public health concern and abnormalities in insulin action within the brain likely contribute to its pathogenesis. This project attempts to increase understanding of insulin transport into the brain in order to provide future targets for pharmaceutical development in the treatment of type 2 diabetes.
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