首页> 外文OA文献 >Unraveling Mechanisms of Insulin Resistance in Type 2 Diabetes in Human Adipocytes : Role of extracellular signal regulated kinase 1/2 (ERK1/2) and forkhead box protein 01 (FOX01)
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Unraveling Mechanisms of Insulin Resistance in Type 2 Diabetes in Human Adipocytes : Role of extracellular signal regulated kinase 1/2 (ERK1/2) and forkhead box protein 01 (FOX01)

机译:揭示人类脂肪细胞中2型糖尿病患者胰岛素抵抗的机制:细胞外信号调节激酶1/2(ERK1 / 2)和叉头盒蛋白01(FOX01)的作用

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摘要

Type 2 Diabetes is characterized by hyperglycemia primarily caused due to insulin resistance in insulin responsive tissues and insufficient production of insulin by the β-cells. Insulin resistance appears to develop first in the expanding adipose tissue during caloric surplus and affects other tissues like liver and muscle by ectopic fat accumulation. In spite of significant research in field of insulin signaling, very little has been known about the mechanisms that lead to insulin resistance and T2D. We aim for network-wide knowledge of insulin signaling in human adipocytes and to identify mechanisms that can induce insulin resistance in diabetic individuals. We have herein focused on the transcriptional control of insulin via ERK and FOXO1, and have used mathematical modelling to gain a systems-level understanding of insulin signaling network. Through the work in this thesis, we present for the first time a dynamic comprehensive model for insulin signaling for the adipocytes, for both metabolic and transcriptional control, and that can simulate data from both normal and diabetic individuals. We described insulin regulation of ERK phosphorylation and showed that both its insulin sensitivity and maxima  response to insulin was curtailed in adipocytes from diabetic individuals (Paper I). Our findings indicate that insulin regulated ERK pathway exerts control on transcription not only through phosphorylation of Elk-1 but also through phosphorylation of FOXO1 and exerts translational control via phosphorylation of ribosomal protein S6 (Paper I, II). Furthermore, we showed that insulin-induced FOXO1 phosphorylation or its insulin sensitivity was not impaired in diabetic individuals, although FOXO1 protein level was reduced by 45% in adipocytes from patients with type 2 diabetes. Comprehensive analysis of the detailed insulin signaling model showed that attenuation of the feedback from mTORC1 to IRS1-Ser307 explained dominant part of the insulin resistance seen in adipocytes from diabetic individuals (Paper II). More interestingly, inhibition of FOXO1 with a dominant negative construct of FOXO1, mimicked the diabetic state in the adipocytes, with the similarity extending to both insulin signaling as well as the reduced protein levels, as seen in the diabetic adipocytes. We also show that mTORC1 and FOXO1 maintain each other’s expression/activity in the human adipocytes (Paper II, III). Our findings thus demonstrate that the interplay between mTORC1 and FOXO1 maintains normal insulin signaling in the human adipocytes.
机译:2型糖尿病的特征是高血糖症,主要由胰岛素反应性组织中的胰岛素抵抗和β细胞产生的胰岛素不足引起。在热量过剩期间,胰岛素抵抗似乎首先在扩张的脂肪组织中发展,并通过异位脂肪积聚影响其他组织,例如肝脏和肌肉。尽管在胰岛素信号传导领域进行了大量研究,但对导致胰岛素抵抗和T2D的机制知之甚少。我们旨在了解人脂肪细胞中胰岛素信号的全网络知识,并确定可在糖尿病个体中诱导胰岛素抵抗的机制。在这里,我们专注于通过ERK和FOXO1进行胰岛素的转录控制,并已使用数学模型获得了对胰岛素信号网络的系统级理解。通过本论文的工作,我们首次提出了用于脂肪细胞的胰岛素信号传导,代谢和转录控制的动态综合模型,该模型可以模拟正常和糖尿病个体的数据。我们描述了胰岛素对ERK磷酸化的调节,并表明其胰岛素敏感性和对胰岛素的最大反应均在糖尿病个体的脂肪细胞中减少(论文I)。我们的发现表明,胰岛素调节的ERK途径不仅通过Elk-1的磷酸化,而且通过FOXO1的磷酸化对转录施加控制,并且通过核糖体蛋白S6的磷酸化发挥翻译控制作用(论文I,II)。此外,我们显示,尽管2型糖尿病患者的脂肪细胞中的FOXO1蛋白水平降低了45%,但糖尿病个体的胰岛素诱导的FOXO1磷酸化或其胰岛素敏感性并未受到损害。对详细的胰岛素信号模型的综合分析表明,从mTORC1到IRS1-Ser307的反馈的减弱解释了在糖尿病个体的脂肪细胞中见到的胰岛素抵抗的主要部分(论文II)。更有趣的是,用FOXO1的显性阴性构建体抑制FOXO1可以模拟脂肪细胞中的糖尿病状态,相似性不仅可以扩展到胰岛素信号传导,还可以降低蛋白水平,如在糖尿病脂肪细胞中所见。我们还表明,mTORC1和FOXO1在人类脂肪细胞中保持彼此的表达/活性(论文II,III)。因此,我们的发现表明,mTORC1和FOXO1之间的相互作用可维持人脂肪细胞中的正常胰岛素信号传导。

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    Rohini Rajan, Meenu;

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  • 年度 2016
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