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Live Images of GLUT4 Protein Trafficking in Mouse Primary Hypothalamic Neurons Using Deconvolution Microscopy

机译:使用反卷积显微镜观察小鼠初级下丘脑神经元中GLUT4蛋白贩运的实时图像

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摘要

Type 2 diabetes mellitus (T2DM) is a global health crisis which is characterized by insulin signaling impairment and chronic inflammation in peripheral tissues. The hypothalamus in the central nervous system (CNS) is the control center for energy and insulin signal response regulation. Chronic inflammation in peripheral tissues and imbalances of certain chemokines (such as CCL5, TNFα, and IL-6) contribute to diabetes and obesity. However, the functional mechanism(s) connecting chemokines and hypothalamic insulin signal regulation still remain unclear.In vitro primary neuron culture models are convenient and simple models which can be used to investigate insulin signal regulation in hypothalamic neurons. In this study, we introduced exogeneous GLUT4 protein conjugated with GFP (GFP-GLUT4) into primary hypothalamic neurons to track GLUT4 membrane translocation upon insulin stimulation. Time-lapse images of GFP-GLUT4 protein trafficking were recorded by deconvolution microscopy, which allowed users to generate high-speed, high-resolution images without damaging the neurons significantly while conducting the experiment. The contribution of CCR5 in insulin regulated GLUT4 translocation was observed in CCR5 deficient hypothalamic neurons, which were isolated and cultured from CCR5 knockout mice. Our results demonstrated that the GLUT4 membrane translocation efficiency was reduced in CCR5 deficient hypothalamic neurons after insulin stimulation.
机译:2型糖尿病(T2DM)是一种全球性健康危机,其特征是胰岛素信号传导障碍和周围组织的慢性炎症。中枢神经系统(CNS)的下丘脑是能量和胰岛素信号反应调节的控制中心。周围组织的慢性炎症和某些趋化因子(例如CCL5,TNFα和IL-6)的失衡会导致糖尿病和肥胖。然而,连接趋化因子和下丘脑胰岛素信号调节的功能机制仍不清楚。体外原代神经元培养模型是方便而简单的模型,可用于研究下丘脑神经元的胰岛素信号调节。在这项研究中,我们将与GFP(GFP-GLUT4)缀合的外源GLUT4蛋白引入到下丘脑神经元中,以在胰岛素刺激下追踪GLUT4膜移位。通过反卷积显微镜记录了GFP-GLUT4蛋白运输的延时图像,这使用户可以在进行实验的同时生成高速,高分辨率的图像,而不会明显损害神经元。在CCR5缺陷型下丘脑神经元中观察到CCR5在胰岛素调节的GLUT4易位中的作用,该丘脑神经元是从CCR5基因敲除小鼠中分离和培养的。我们的结果表明,胰岛素刺激后,CCR5缺失的下丘脑神经元的GLUT4膜移位效率降低。

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