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钾离子和N-甲基-D-天冬氨酸对培养的小脑颗粒神经元中葡萄糖转运蛋白GLUT3和GLUT1表达的调节作用

Modulation of expression of glucose transporters GLUT3 and GLUT1 by potassium and N-methyl-D-aspartate in cultured cerebellar granule neurons.

作者信息

Maher F, Simpson I A

机构信息

Experimental Diabetes, Metabolism and Nutrition Section, NIDDK, National Institutes of Health, Bethesda, Maryland 20892.

出版信息

Mol Cell Neurosci. 1994 Aug;5(4):369-75. doi: 10.1006/mcne.1994.1044.

Abstract

Depolarization is known to stimulate neuronal oxidative metabolism. As glucose is the primary fuel for oxidative metabolism in the brain, the entry of glucose into neural cells is a potential control point for any regulatory events in brain metabolism. Therefore, the effects of depolarizing stimuli, high K+ and N-methyl-D-aspartate (NMDA), were examined on the functional expression of glucose transporter isoforms GLUT1 and GLUT3 in primary cultured cerebellar granule neurons. Higher levels of glucose transport activity were observed in neurons cultured in 25 mM KCl (K25) compared to those in 5 and 15 mM KCl (K5 and K15). The elevated glucose transport activity correlated with increased levels of GLUT3 protein and, to a lesser extent, GLUT1. Both GLUT3 and GLUT1 were regulated at the level of mRNA expression. Addition of NMDA to K5 and K15 cultures increased both glucose uptake and GLUT3 protein levels, with smaller changes in GLUT1. NMDA effects were not additive with K25 effects. All these changes were observed only with chronic exposure of neurons to high K+ or NMDA; no acute effects on glucose uptake or transporter expression were found. Thus, chronic depolarization of primary cerebellar granule neurons acts as a stimulus for the expression of the neuronal GLUT3 glucose transporter isoform.

摘要

已知去极化可刺激神经元的氧化代谢。由于葡萄糖是大脑氧化代谢的主要燃料,葡萄糖进入神经细胞是大脑代谢中任何调节事件的一个潜在控制点。因此,研究了去极化刺激、高钾离子(K⁺)和N-甲基-D-天冬氨酸(NMDA)对原代培养的小脑颗粒神经元中葡萄糖转运蛋白异构体GLUT1和GLUT3功能表达的影响。与在5 mM和15 mM KCl(K5和K15)中培养的神经元相比,在25 mM KCl(K25)中培养的神经元观察到更高水平的葡萄糖转运活性。葡萄糖转运活性的升高与GLUT3蛋白水平的增加相关,在较小程度上与GLUT1相关。GLUT3和GLUT1均在mRNA表达水平受到调控。向K5和K15培养物中添加NMDA增加了葡萄糖摄取和GLUT3蛋白水平,而GLUT1的变化较小。NMDA的作用与K25的作用不是相加的。所有这些变化仅在神经元长期暴露于高钾离子或NMDA时观察到;未发现对葡萄糖摄取或转运蛋白表达有急性影响。因此,原代小脑颗粒神经元的慢性去极化作为神经元GLUT3葡萄糖转运蛋白异构体表达的一种刺激因素。

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