The function and regulation of the novel pregnancy-specific hexokinase HKDC1
The function and regulation of the novel pregnancy-specific hexokinase HKDC1
批准号:
9425252
负责人:
Brian Thomas Layden
金额:
$65.21万
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:
2015-09-21 至 2020-07-31
中文摘要
描述(申请人提供):妊娠期糖尿病(GDM),在怀孕期间发病的糖尿病,可导致母亲和子女的急性和慢性不良后果。这项建议的总体目标是了解新的己糖激酶基因HKDC1在妊娠期糖尿病发病机制中的作用。在最近一项关于高血糖和不良妊娠结局(HAPO)队列的遗传学研究中,PI和合著者报告了一个新的与母亲妊娠期血糖特征相关的基因座。该区域的主要候选基因--己糖激酶域包含1(HKDC1)--尚未被鉴定。这项提议将检验HKDC1是一种新的第五种脊椎动物己糖激酶的中心假设,它在怀孕期间控制血糖稳态。验证这一假设很重要,因为它将揭示导致全球最常见的妊娠并发症之一的新机制。这一结果也将对理解脊椎动物的新陈代谢产生广泛的影响,因为己糖激酶是糖酵解的第一步,而该领域的教条是只有四种脊椎动物己糖激酶亚型。表征第五己糖激酶的功能和调控将挑战这一教条,并将开辟几个新的研究领域。核心假设将在三个互补的水平上进行检验。首先,我们将广泛研究HKDC1蛋白的己糖激酶活性。有价证券投资报告的初步数据已显示HKDC1具有己糖激酶活性。这一目标将通过系统地描述HKDC1及其亚基的动力学,将HKDC1置于其他己糖激酶类的背景下。其次,将评估HKDC1在妊娠期血糖稳态中的体内作用。组织表达模式表明,HKDC1通过其在胰腺细胞和肝脏中的作用来调节怀孕期间的葡萄糖稳态。通过全局和组织特异性消融的小鼠模型,将评估怀孕期间的葡萄糖稳态。第三,将通过检验GDM相关的基因变异改变怀孕环境中HKDC1的调节的假设来研究HKDC1在人类怀孕期间调节血糖的作用。这一假设将通过新的高通量报告分析进行验证:(I)发现调节HKDC1表达的主要和次要激素和葡萄糖反应元件;(Ii)识别改变原始GWA群中调节元件功能的遗传变异。这项提议的结果将是HKDC1编码一种新的己糖激酶,其表达变化会影响怀孕期间的葡萄糖稳态。这一结果将为研究怀孕期间的葡萄糖代谢提供新的见解。
英文摘要
DESCRIPTION (provided by applicant): Gestational diabetes (GDM), diabetes with onset during pregnancy, can result in acute and chronic adverse outcomes for mother and offspring. The overall objective of this proposal is to understand the role of the novel hexokinase gene HKDC1 in the pathogenesis of GDM. In a recent genetic study of the Hyperglycemia and Adverse Pregnancy Outcomes (HAPO) cohort, the PIs and co-authors reported a novel loci associated with maternal glycemic traits specifically during pregnancy. The lead candidate gene in the region, hexokinase- domain containing 1 (HKDC1), has not been characterized. This proposal will test the central hypothesis that HKDC1 is a novel fifth vertebrate hexokinase that controls glucose homeostasis during pregnancy. Testing that hypothesis is important because it will reveal new mechanisms contributing to one of the most common complications of pregnancy worldwide. The results will also have broad-reaching impacts on understanding vertebrate metabolism because hexokinase is the first step in glycolysis, and the dogma in the field is that there are only four vertebrate hexokinase isoforms. Characterizing the function and regulation of the fifth hexokinase will challenge that dogma and will open up several new areas of study. The central hypothesis will be tested at three complementary levels. First, the hexokinase activity of the HKDC1 protein will be extensively characterized. Preliminary data from the PIs already demonstrate that HKDC1 has hexokinase activity. This aim will place HKDC1 in the context of the other hexokinases by systematically characterizing the kinetics of HKDC1 and its subunits. Second, the in vivo role of HKDC1 in glucose homeostasis during pregnancy will be assessed. Tissue expression patterns suggest that HKDC1 regulates glucose homeostasis during pregnancy specifically through its role in pancreatic ß cells and liver. Through global and tissue-specific ablation mouse models, glucose homeostasis during pregnancy will be assessed. Third, the role of HKDC1 in regulating glucose during human pregnancy will be investigated by testing the hypothesis that GDM-associated genetic variants alter regulation of HKDC1 in the pregnant environment. That hypothesis will be tested using novel high-throughput reporter assays (i) to discover the primary and secondary hormone and glucose response elements that regulate HKDC1 expression and (ii) to identify genetic variants that alter regulatory element function in the original GWAS population. The outcome of this proposal will be that HKDC1 encodes a novel hexokinase whose altered expression impacts glucose homeostasis during pregnancy. This outcome will provide new insight into glucose metabolism during pregnancy.
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