Hollnagel Jan-Oliver, Cesetti Tiziana, Schneider Justus, Vazetdinova Alina, Valiullina-Rakhmatullina Fliza, Lewen Andrea, Rozov Andrei, Kann Oliver
Institute of Physiology and Pathophysiology, University of Heidelberg, Im Neuenheimer Feld 326, 69120 Heidelberg, Germany.
OpenLab of Neurobiology, Kazan Federal University, 420008 Kazan, Russia.
iScience. 2020 Jul 24;23(7):101316. doi: 10.1016/j.isci.2020.101316. Epub 2020 Jun 27.
Lactate shuttled from blood, astrocytes, and/or oligodendrocytes may serve as the major glucose alternative in brain energy metabolism. However, its effectiveness in fueling neuronal information processing underlying complex cortex functions like perception and memory is unclear. We show that sole lactate disturbs electrical gamma and theta-gamma oscillations in hippocampal networks by either attenuation or neural bursts. Bursting is suppressed by elevating the glucose fraction in substrate supply. By contrast, lactate does not affect electrical sharp wave-ripple activity featuring lower energy use. Lactate increases the oxygen consumption during the network states, reflecting enhanced oxidative ATP synthesis in mitochondria. Finally, lactate attenuates synaptic transmission in excitatory pyramidal cells and fast-spiking, inhibitory interneurons by reduced neurotransmitter release from presynaptic terminals, whereas action potential generation in the axon is regular. In conclusion, sole lactate is less effective and potentially harmful during gamma-band rhythms by omitting obligatory ATP delivery through fast glycolysis at the synapse.
从血液、星形胶质细胞和/或少突胶质细胞穿梭而来的乳酸可能是大脑能量代谢中主要的葡萄糖替代物。然而,其在为诸如感知和记忆等复杂皮层功能背后的神经元信息处理提供能量方面的有效性尚不清楚。我们发现,单独的乳酸会通过衰减或神经爆发扰乱海马网络中的电γ波和θ-γ振荡。通过提高底物供应中的葡萄糖比例,爆发会受到抑制。相比之下,乳酸不会影响以较低能量消耗为特征的电尖波-涟漪活动。乳酸会增加网络状态期间的氧气消耗,这反映出线粒体中氧化ATP合成的增强。最后,乳酸通过减少突触前终末的神经递质释放,减弱兴奋性锥体细胞和快速放电的抑制性中间神经元中的突触传递,而轴突中的动作电位产生是正常的。总之,在γ波段节律期间,单独的乳酸通过省略突触处通过快速糖酵解进行的必需ATP传递,效果较差且可能有害。