Fan Genhao, Liu Menglin, Liu Jia, Huang Yuhong
Graduate School, Tianjin University of Chinese Medicine, Tianjin, China.
Department of Clinical Pharmacology, The Second Affiliated Hospital of Tianjin University of Chinese Medicine, Tianjin, China.
Front Mol Neurosci. 2023 Mar 23;16:1113081. doi: 10.3389/fnmol.2023.1113081. eCollection 2023.
Glutamate plays an important role in excitotoxicity and ferroptosis. Excitotoxicity occurs through over-stimulation of glutamate receptors, specifically NMDAR, while in the non-receptor-mediated pathway, high glutamate concentrations reduce cystine uptake by inhibiting the System Xc-, leading to intracellular glutathione depletion and resulting in ROS accumulation, which contributes to increased lipid peroxidation, mitochondrial damage, and ultimately ferroptosis. Oxidative stress appears to crosstalk between excitotoxicity and ferroptosis, and it is essential to maintain glutamate homeostasis and inhibit oxidative stress responses . As researchers work to develop natural compounds to further investigate the complex mechanisms and regulatory functions of ferroptosis and excitotoxicity, new avenues will be available for the effective treatment of ischaemic stroke. Therefore, this paper provides a review of the molecular mechanisms and treatment of glutamate-mediated excitotoxicity and ferroptosis.
谷氨酸在兴奋性毒性和铁死亡中起重要作用。兴奋性毒性通过谷氨酸受体(特别是NMDAR)的过度刺激而发生,而在非受体介导的途径中,高浓度谷氨酸通过抑制系统Xc-减少胱氨酸摄取,导致细胞内谷胱甘肽耗竭并导致ROS积累,这会导致脂质过氧化增加、线粒体损伤,并最终导致铁死亡。氧化应激似乎在兴奋性毒性和铁死亡之间相互作用,维持谷氨酸稳态和抑制氧化应激反应至关重要。随着研究人员致力于开发天然化合物以进一步研究铁死亡和兴奋性毒性的复杂机制及调节功能,将为缺血性中风的有效治疗提供新途径。因此,本文综述了谷氨酸介导的兴奋性毒性和铁死亡的分子机制及治疗方法。