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氢-碳核磁共振代谢技术揭示,乳酸为小鼠提供代谢底物支持并减轻缺血性脑损伤。

Lactate Provides Metabolic Substrate Support and Attenuates Ischemic Brain Injury in Mice, Revealed by H-C Nuclear Magnetic Resonance Metabolic Technique.

作者信息

Wu Kefan, Liu Yajing, Wang Yuxuan, Hou Jiabao, Jiang Meng, Lei Shaoqin, Zhao Bo, Xia Zhongyuan

机构信息

Department of Anesthesiology, Renmin Hospital of Wuhan University, Wuhan 430064, China.

出版信息

Biomedicines. 2025 Mar 24;13(4):789. doi: 10.3390/biomedicines13040789.

Abstract

Lactate, classically considered a metabolic byproduct of anaerobic glycolysis, is implicated in ischemic acidosis and neuronal injury. The recent evidence highlights its potential role in sustaining metabolic networks and neuroprotection. This study investigates lactate's compensatory mechanisms in ischemic brain injury by analyzing post-ischemic metabolic enrichments and inter-regional metabolite correlations. Dynamic metabolic profiling was conducted using C-labeled glucose combined with H-C NMR spectroscopy to quantify the metabolite enrichment changes in a murine cerebral ischemia model ( = 8). In vivo validation included intracerebroventricular pH-neutral lactate infusion in ischemic mice to assess the behavioral, electrophysiological, and mitochondrial outcomes. In vitro, HT22 hippocampal neurons underwent oxygen-glucose deprivation (OGD) with pH-controlled lactate supplementation (1 mM), followed by the evaluation of neuronal survival, mitochondrial membrane potential, and glycolytic enzyme expression. NMR spectroscopy revealed a 30-50% reduction in most cerebral metabolites post-ischemia ( < 0.05), while the quantities of lactate and the related three-carbon intermediates remained stable or increased. Correlation analyses demonstrated significantly diminished inter-metabolite coordination post-ischemia, yet lactate and glutamate maintained high metabolic activity levels (r > 0.80, < 0.01). Lactate exhibited superior cross-regional metabolic mobility compared to those of the other three-carbon intermediates. In vivo, lactate infusion improved the behavioral/electrophysiological outcomes and reduced mitochondrial damage. In the OGD-treated neurons, pH-neutral lactate (7.4) reduced mortality ( < 0.05), preserved the mitochondrial membrane potential ( < 0.05), and downregulated the glycolytic enzymes (HK, PFK, and PKM; < 0.01), thereby attenuating H production. Under ischemic metabolic crisis, lactate and the three-carbon intermediates stabilize as critical substrates, compensating for global metabolite depletion. pH-neutral lactate restores energy flux, modulates the glycolytic pathways, and provides neuroprotection by mitigating acidotoxicity.

摘要

传统上认为乳酸是无氧糖酵解的代谢副产物,与缺血性酸中毒和神经元损伤有关。最近的证据突出了其在维持代谢网络和神经保护中的潜在作用。本研究通过分析缺血后代谢物富集和区域间代谢物相关性,研究乳酸在缺血性脑损伤中的代偿机制。使用C标记的葡萄糖结合H-C核磁共振波谱进行动态代谢谱分析,以量化小鼠脑缺血模型( = 8)中的代谢物富集变化。体内验证包括对缺血小鼠进行脑室内pH中性乳酸输注,以评估行为、电生理和线粒体结果。在体外,HT22海马神经元在pH值控制的乳酸补充(1 mM)下进行氧-葡萄糖剥夺(OGD),随后评估神经元存活、线粒体膜电位和糖酵解酶表达。核磁共振波谱显示缺血后大多数脑代谢物减少30-50%( < 0.05),而乳酸和相关三碳中间体的量保持稳定或增加。相关性分析表明缺血后代谢物间的协调显著减少,但乳酸和谷氨酸维持高代谢活性水平(r > 0.80, < 0.01)。与其他三碳中间体相比,乳酸表现出卓越的跨区域代谢流动性。在体内,乳酸输注改善了行为/电生理结果并减少了线粒体损伤。在OGD处理的神经元中,pH中性乳酸(7.4)降低了死亡率( < 0.05),保留了线粒体膜电位( < 0.05),并下调了糖酵解酶(HK、PFK和PKM; < 0.01),从而减少了H生成。在缺血性代谢危机下,乳酸和三碳中间体作为关键底物稳定下来,补偿整体代谢物耗竭。pH中性乳酸恢复能量通量,调节糖酵解途径,并通过减轻酸毒性提供神经保护。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e017/12025266/fd355e3eef87/biomedicines-13-00789-g001.jpg

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