Pellerin L, Magistretti P J
Institut de Physiologie, Université de Lausanne, Switzerland.
Proc Natl Acad Sci U S A. 1994 Oct 25;91(22):10625-9. doi: 10.1073/pnas.91.22.10625.
Glutamate, released at a majority of excitatory synapses in the central nervous system, depolarizes neurons by acting at specific receptors. Its action is terminated by removal from the synaptic cleft mostly via Na(+)-dependent uptake systems located on both neurons and astrocytes. Here we report that glutamate, in addition to its receptor-mediated actions on neuronal excitability, stimulates glycolysis--i.e., glucose utilization and lactate production--in astrocytes. This metabolic action is mediated by activation of a Na(+)-dependent uptake system and not by interaction with receptors. The mechanism involves the Na+/K(+)-ATPase, which is activated by an increase in the intracellular concentration of Na+ cotransported with glutamate by the electrogenic uptake system. Thus, when glutamate is released from active synapses and taken up by astrocytes, the newly identified signaling pathway described here would provide a simple and direct mechanism to tightly couple neuronal activity to glucose utilization. In addition, glutamate-stimulated glycolysis is consistent with data obtained from functional brain imaging studies indicating local nonoxidative glucose utilization during physiological activation.
谷氨酸在中枢神经系统的大多数兴奋性突触处释放,通过作用于特定受体使神经元去极化。其作用通过主要经由位于神经元和星形胶质细胞上的钠依赖性摄取系统从突触间隙清除而终止。我们在此报告,谷氨酸除了其受体介导的对神经元兴奋性的作用外,还能刺激星形胶质细胞中的糖酵解,即葡萄糖利用和乳酸生成。这种代谢作用是由钠依赖性摄取系统的激活介导的,而非通过与受体相互作用。该机制涉及钠钾ATP酶,它由与谷氨酸共转运进入细胞内的钠离子浓度增加所激活,该共转运过程由生电摄取系统完成。因此,当谷氨酸从活跃突触释放并被星形胶质细胞摄取时,本文所述的新发现的信号通路将提供一种简单直接的机制,使神经元活动与葡萄糖利用紧密耦合。此外,谷氨酸刺激的糖酵解与功能性脑成像研究获得的数据一致,这些数据表明在生理激活过程中存在局部非氧化性葡萄糖利用。