Institute of Neurobiology, Biomedical Research Center of the Slovak Academy of Sciences, Soltesovej 4-6, Košice, 040 01, Slovak Republic.
Department of Medical Physiology, Faculty of Medicine, University of Pavol Jozef Safarik, Košice, 040 01, Slovak Republic.
Neurochem Res. 2023 Dec;48(12):3560-3570. doi: 10.1007/s11064-023-04002-x. Epub 2023 Aug 2.
Remote ischaemic conditioning (RIC) becomes an attractive strategy for the endogenous stimulation of mechanisms protecting neurons against ischaemia. Although the processes underlying the RIC are not clearly understood, the homeostasis of glutamate seems to play an important role. The present study is focused on the investigation of the brain to blood efflux of glutamate in a condition mimicking ischaemia-mediated excitotoxicity and remote ischaemic preconditioning (RIPC). The animals were pre-treated with a hind-limb tourniquet one hour before the intraventricular administration of glutamate and its release was monitored as the concentration of glutamate/glutathione in blood and liquor for up to 1 h. The transport mediated by excitatory amino acid transporters (EAATs) was verified by their inhibition with Evans Blue intraventricular co-administration. RIPC mediated the efflux of glutamate exceeding from CSF to blood in the very early stage of intoxication. As a consequence, the blood level of glutamate rose in a moment. EAATs inhibition confirmed the active role of glutamate transporters in this process. In the blood, elevated levels of glutamate served as a relevant source of antioxidant glutathione for circulating cells in RIPC-treated individuals. All of those RIPC-mediated recoveries in processes of glutamate homeostasis reflect the improvement of oxidative stress, suggesting glutamate-accelerated detoxication to be one of the key mechanisms of RIPC-mediated neuroprotection.
远程缺血预处理(RIC)成为一种有吸引力的内源性刺激机制,以保护神经元免受缺血的策略。尽管 RIC 的过程尚不清楚,但谷氨酸的动态平衡似乎起着重要作用。本研究集中于在模拟缺血介导的兴奋性毒性和远程缺血预处理(RIPC)的条件下,研究谷氨酸从脑到血液的外排。动物在脑室给予谷氨酸前一小时用后肢止血带预处理,并监测血液和脑脊液中谷氨酸/谷胱甘肽的浓度,持续 1 小时。通过脑室共给予 Evans Blue 抑制兴奋性氨基酸转运体(EAATs)来验证其转运。RIC 在中毒的早期阶段介导了谷氨酸从 CSF 向血液的外排。结果,血液中谷氨酸的水平立即升高。EAATs 抑制证实了谷氨酸转运体在这一过程中的积极作用。在血液中,谷氨酸水平升高是 RIPC 处理个体中循环细胞中抗氧化谷胱甘肽的相关来源。谷氨酸动态平衡的所有这些 RIPC 介导的恢复都反映了氧化应激的改善,这表明谷氨酸加速解毒是 RIPC 介导的神经保护的关键机制之一。