Department of Biomedical Sciences and Public Health, School of Medicine, University "Politecnica delle Marche", Via Tronto 10/A, 60126, Ancona, Italy.
Sci Rep. 2017 Oct 12;7(1):13073. doi: 10.1038/s41598-017-13478-x.
Myocardial ischemia culminates in ATP production impairment, ionic derangement and cell death. The provision of metabolic substrates during reperfusion significantly increases heart tolerance to ischemia by improving mitochondrial performance. Under normoxia, glutamate contributes to myocardial energy balance as substrate for anaplerotic reactions, and we demonstrated that the Na/Ca exchanger1 (NCX1) provides functional support for both glutamate uptake and use for ATP synthesis. Here we investigated the role of NCX1 in the potential of glutamate to improve energy metabolism and survival of cardiac cells subjected to hypoxia/reoxygenation (H/R). Specifically, in H9c2-NCX1 myoblasts, ATP levels, mitochondrial activities and cell survival were significantly compromised after H/R challenge. Glutamate supplementation at the onset of the reoxygenation phase significantly promoted viability, improved mitochondrial functions and normalized the H/R-induced increase of NCX1 reverse-mode activity. The benefits of glutamate were strikingly lost in H9c2-WT (lacking NCX1 expression), or in H9c2-NCX1 and rat cardiomyocytes treated with either NCX or Excitatory Amino Acid Transporters (EAATs) blockers, suggesting that a functional interplay between these transporters is critically required for glutamate-induced protection. Collectively, these results revealed for the first time the key role of NCX1 for the beneficial effects of glutamate against H/R-induced cell injury.
心肌缺血最终导致 ATP 产生受损、离子紊乱和细胞死亡。再灌注期间提供代谢底物可通过改善线粒体功能显著提高心脏对缺血的耐受性。在正常氧合条件下,谷氨酸作为氨酰基反应的底物为心肌能量平衡做出贡献,我们证明钠/钙交换体 1(NCX1)为谷氨酸摄取和用于 ATP 合成的使用提供了功能支持。在这里,我们研究了 NCX1 在谷氨酸改善缺氧/复氧(H/R)后心脏细胞能量代谢和存活潜力中的作用。具体来说,在 H9c2-NCX1 成肌细胞中,H/R 挑战后 ATP 水平、线粒体活性和细胞存活率显著受损。在再氧化阶段开始时补充谷氨酸可显著促进存活,改善线粒体功能,并使 H/R 诱导的 NCX1 反向模式活性增加正常化。在缺乏 NCX1 表达的 H9c2-WT 或用 NCX 或兴奋性氨基酸转运体(EAATs)抑制剂处理的 H9c2-NCX1 和大鼠心肌细胞中,谷氨酸的益处明显丧失,这表明这些转运体之间的功能相互作用对于谷氨酸诱导的保护至关重要。总的来说,这些结果首次揭示了 NCX1 在谷氨酸对抗 H/R 诱导的细胞损伤的有益作用中的关键作用。