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The effects of metabolic dysfunction on phosphoregulation of the circadian clock

The effects of metabolic dysfunction on phosphoregulation of the circadian clock
代谢功能障碍对生物钟磷酸调节的影响
批准号:
9087006
负责人:
Adam Joseph Contreras
金额:
$3.77万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-07-01 至 2018-06-30

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中文摘要
翻译
描述(由申请人提供):代谢性疾病,如糖尿病和肥胖症,影响着数百万人。2型糖尿病(T2D)是最常见的糖尿病形式,对胰岛素信号的抵抗导致高血糖和其他并发症。T2D也与昼夜节律紊乱有关,但病因关系尚不清楚。增加的o -链糖基化(o - glcnac酰化)是T2D和昼夜节律之间网络的一个共同环节。通常,一部分葡萄糖在己糖胺生物合成途径(HBP)中代谢并形成尿苷二磷酸n -乙酰氨基葡萄糖(UDP-GlcNAc),这是O- glcn酰化的供体分子。在稳态条件下,o - glcnac酰化和磷酸化相互平衡,调节蛋白活性。因此,o - glcn酰化表现为葡萄糖敏感调节剂。由于高血糖会增加UDP-GlcNAc和o - glcna酰化水平,由此产生的高糖基化会影响磷酸化并调节蛋白质活性。昼夜节律和关键时钟蛋白在24小时周期内受到磷酸化的严格调节,破坏这种生化循环与代谢紊乱和抑郁症相关。然而,目前的证据无法描述t2d诱导的昼夜节律紊乱的机制。我建议在T2D果蝇模型系统中使用遗传和代谢方法阐明T2D诱导的昼夜节律中断的机制,特别关注昼夜节律钟和时钟激酶的翻译后调节。我假设T2D会增加o - glcn酰化,减少磷酸化,并改变调节生物钟的特定蛋白质和激酶的活性。通过调查
英文摘要
DESCRIPTION (provided by applicant): Metabolic disorders such as diabetes and obesity affect millions of people. Type 2 Diabetes (T2D) is the most common form of diabetes in which resistance to insulin signaling causes hyperglycemia and other complications. T2D is also correlated with circadian rhythm disruption, but the causative relationship is poorly understood. Increased O-linked glycosylation (O-GlcNAcylation) is a common link in the network between T2D and circadian rhythm. Typically, a portion of glucose is metabolized in the hexosamine biosynthetic pathway (HBP) and forms Uridine Diphosphate N-Acetyl Glucosamine (UDP-GlcNAc), a donor molecule for O- GlcNAcylation. Under homeostatic conditions, O-GlcNAcylation and phosphorylation are balanced and regulate protein activities. Thus, O-GlcNAcylation behaves as a glucose-sensitive regulator. Since hyperglycemia increases UDP-GlcNAc and O-GlcNAcylation levels, the resultant hyper-glycosylation can affect phosphorylation and modulate protein activity. Circadian rhythm and key clock proteins are tightly regulated by phosphorylation on a 24-hour cycle and disrupting this biochemical cycle correlates to metabolic disorders and depression. However, current evidence fails to describe mechanisms for T2D-induced circadian rhythm disruption. I propose to elucidate mechanisms of T2D-induced circadian rhythm disruption using genetic and metabolic approaches in a T2D fly model system with special focus on the posttranslational regulation of the circadian clock and clock kinases. I hypothesize that T2D will increase O-GlcNAcylation, reduce phosphorylation, and alter activities of specific proteins and kinases that modulate the clock. By investigating the role of O-GlcNAcylation in circadian clock regulation, new diagnostic profiles and therapeutic targets may be identified for the intervention of T2D risks, pathologies, and complications.
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