Castro Maite A, Beltrán Felipe A, Brauchi Sebastián, Concha Ilona I
Instituto de Bioquímica, Universidad Austral de Chile, Valdivia, Chile.
J Neurochem. 2009 Jul;110(2):423-40. doi: 10.1111/j.1471-4159.2009.06151.x. Epub 2009 May 5.
In this review, we discuss a novel function of ascorbic acid in brain energetics. It has been proposed that during glutamatergic synaptic activity neurons preferably consume lactate released from glia. The key to this energetic coupling is the metabolic activation that occurs in astrocytes by glutamate and an increase in extracellular [K(+)]. Neurons are cells well equipped to consume glucose because they express glucose transporters and glycolytic and tricarboxylic acid cycle enzymes. Moreover, neuronal cells express monocarboxylate transporters and lactate dehydrogenase isoenzyme 1, which is inhibited by pyruvate. As glycolysis produces an increase in pyruvate concentration and a decrease in NAD(+)/NADH, lactate and glucose consumption are not viable at the same time. In this context, we discuss ascorbic acid participation as a metabolic switch modulating neuronal metabolism between rest and activation periods. Ascorbic acid is highly concentrated in CNS. Glutamate stimulates ascorbic acid release from astrocytes. Ascorbic acid entry into neurons and within the cell can inhibit glucose consumption and stimulate lactate transport. For this switch to occur, an ascorbic acid flow is necessary between astrocytes and neurons, which is driven by neural activity and is part of vitamin C recycling. Here, we review the role of glucose and lactate as metabolic substrates and the modulation of neuronal metabolism by ascorbic acid.
在本综述中,我们讨论了抗坏血酸在脑能量代谢中的一种新功能。有人提出,在谷氨酸能突触活动期间,神经元优先消耗神经胶质细胞释放的乳酸。这种能量耦合的关键在于谷氨酸在星形胶质细胞中引发的代谢激活以及细胞外[K⁺]的增加。神经元具备良好的消耗葡萄糖的能力,因为它们表达葡萄糖转运体以及糖酵解和三羧酸循环酶。此外,神经元细胞表达单羧酸转运体和乳酸脱氢酶同工酶1,该同工酶受丙酮酸抑制。由于糖酵解会使丙酮酸浓度升高且NAD⁺/NADH降低,所以乳酸和葡萄糖的消耗无法同时进行。在此背景下,我们讨论抗坏血酸作为一种代谢开关在调节神经元静息期和激活期代谢方面的作用。抗坏血酸在中枢神经系统中高度富集。谷氨酸会刺激星形胶质细胞释放抗坏血酸。抗坏血酸进入神经元并在细胞内可抑制葡萄糖消耗并刺激乳酸转运。为了实现这种转换,星形胶质细胞和神经元之间必须有抗坏血酸流动,这种流动由神经活动驱动,是维生素C循环的一部分。在此,我们综述葡萄糖和乳酸作为代谢底物的作用以及抗坏血酸对神经元代谢的调节。