Dias Cândida, Fernandes Eliana, Barbosa Rui M, Laranjinha João, Ledo Ana
Center for Neuroscience and Cell Biology, University of Coimbra, Coimbra, Portugal.
Faculty of Pharmacy, University of Coimbra, Coimbra, Portugal.
Biofactors. 2023 Jul-Aug;49(4):875-886. doi: 10.1002/biof.1951. Epub 2023 Apr 17.
Under physiological conditions, the energetic demand of the brain is met by glucose oxidation. However, ample evidence suggests that lactate produced by astrocytes through aerobic glycolysis may also be an oxidative fuel, highlighting the metabolic compartmentalization between neural cells. Herein, we investigate the roles of glucose and lactate in oxidative metabolism in hippocampal slices, a model that preserves neuron-glia interactions. To this purpose, we used high-resolution respirometry to measure oxygen consumption (O flux) at the whole tissue level and amperometric lactate microbiosensors to evaluate the concentration dynamics of extracellular lactate. We found that lactate is produced from glucose and transported to the extracellular space by neural cells in hippocampal tissue. Under resting conditions, endogenous lactate was used by neurons to support oxidative metabolism, which was boosted by exogenously added lactate even in the presence of excess glucose. Depolarization of hippocampal tissue with high K significantly increased the rate of oxidative phosphorylation, which was accompanied by a transient decrease in extracellular lactate concentration. Both effects were reverted by inhibition of the neuronal lactate transporter, monocarboxylate transporters 2 (MCT2), supporting the concept of an inward flux of lactate to neurons to fuel oxidative metabolism. We conclude that astrocytes are the main source of extracellular lactate which is used by neurons to fuel oxidative metabolism, both under resting and stimulated conditions.
在生理条件下,大脑的能量需求通过葡萄糖氧化来满足。然而,大量证据表明,星形胶质细胞通过有氧糖酵解产生的乳酸也可能是一种氧化燃料,这突出了神经细胞之间的代谢区室化。在此,我们研究葡萄糖和乳酸在海马脑片氧化代谢中的作用,海马脑片是一种保留神经元-胶质细胞相互作用的模型。为此,我们使用高分辨率呼吸测定法在整个组织水平测量耗氧量(O通量),并使用安培型乳酸微生物传感器评估细胞外乳酸的浓度动态。我们发现乳酸由葡萄糖产生,并被海马组织中的神经细胞转运到细胞外空间。在静息条件下,神经元利用内源性乳酸来支持氧化代谢,即使在存在过量葡萄糖的情况下,外源性添加的乳酸也能促进氧化代谢。用高钾去极化海马组织显著增加了氧化磷酸化速率,同时伴随着细胞外乳酸浓度的短暂降低。这两种效应均可通过抑制神经元乳酸转运体——单羧酸转运体2(MCT2)而逆转,这支持了乳酸向内流入神经元以促进氧化代谢的概念。我们得出结论,星形胶质细胞是细胞外乳酸的主要来源,在静息和刺激条件下,神经元都利用细胞外乳酸来促进氧化代谢。