N-3 fatty acids, neuronal activity and energy metabolism in the brain

E. Harbeby, F. Pifferi, M. Jouin, H. Pélerin, S. Tremblay, R. Lecomte, S. Cunnane, A. Huertas, J. Alessandri, P. Guesnet
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引用次数: 2

Abstract

The content of docosahexaenoic acid (DHA) in brain membranes is of crucial importance for the optimum development of brain functions. A lack of DHA accretion in the brain is accompanied by deficits in learning behavior linked to impairments in neurotransmission processes, which might result from alteration of brain fuel supply and hence energy metabolism. Experimental data we published support the hypothesis that n-3 fatty acids may modulate brain glucose utilization and metabolism. Indeed rats made deficient in DHA by severe depletion of total n-3 fatty acid intake have 1) a lower brain glucose utilization, 2) a decrease of the glucose transporter protein content GLUT1 both in endothelial cells and in astrocytes, 3) a repression of GLUT1 gene expression in basal state as well as upon neuronal activation. This could be due to the specific action of DHA on the regulation of GLUT1 expression since rat brain endothelial cells cultured with physiological doses of DHA had an increased GLUT1 protein content and glucose transport when compared to non-supplemented cells. These experimental data highlight the impact of n-3 fatty acids on the use of brain glucose, thereby constituting a key factor in the control of synaptic activity. This emerging role suggests that dietary intake of n-3 fatty acids can help to reduce the cognitive deficits in the elderly and possibly symptomatic cerebral metabolic alterations in Alzheimer disease by promoting brain glucose metabolism.
N-3脂肪酸,神经元活动和大脑能量代谢
脑膜中二十二碳六烯酸(DHA)的含量对脑功能的最佳发育至关重要。大脑中DHA的缺乏伴随着与神经传递过程损伤相关的学习行为缺陷,这可能是由于大脑燃料供应和能量代谢的改变造成的。我们发表的实验数据支持n-3脂肪酸可能调节脑葡萄糖利用和代谢的假设。事实上,由于严重消耗总n-3脂肪酸摄入而导致DHA缺乏的大鼠存在以下现象:1)脑葡萄糖利用率降低;2)内皮细胞和星形胶质细胞中葡萄糖转运蛋白GLUT1含量降低;3)GLUT1基因在基础状态和神经元激活时表达受到抑制。这可能是由于DHA对GLUT1表达调控的特异性作用,因为与未补充DHA的细胞相比,经生理剂量DHA培养的大鼠脑内皮细胞的GLUT1蛋白含量和葡萄糖转运增加。这些实验数据强调了n-3脂肪酸对脑葡萄糖使用的影响,从而构成了控制突触活动的关键因素。这一新的作用表明,饮食摄入n-3脂肪酸可以通过促进脑葡萄糖代谢来帮助减少老年人的认知缺陷,并可能减少阿尔茨海默病的症状性脑代谢改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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