Figueroa Johnny D, De Leon Marino
Center for Health Disparities and Molecular Medicine and Department of Basic Sciences, Loma Linda University School of Medicine, Loma Linda, CA, 92350, USA.
Mol Neurobiol. 2014 Aug;50(1):197-213. doi: 10.1007/s12035-014-8701-1. Epub 2014 Apr 17.
Long-chain omega-3 polyunsaturated fatty acids (LC-O3PUFAs) exhibit therapeutic potential for the treatment and prevention of the neurological deficits associated with spinal cord injury (SCI). However, the mechanisms implicated in these protective responses remain unclear. The objective of the present functional metabolomics study was to identify and define the dominant metabolic pathways targeted by dietary LC-O3PUFAs. Sprague-Dawley rats were fed rodent purified chows containing menhaden fish oil-derived LC-O3PUFAs for 8 weeks before being subjected to sham or spinal cord contusion surgeries. We show, through untargeted metabolomics, that dietary LC-O3PUFAs regulate important biochemical signatures associated with amino acid metabolism and free radical scavenging in both the injured and sham-operated spinal cord. Of particular significance, the spinal cord metabolome of animals fed with LC-O3PUFAs exhibited reduced glucose levels (-48 %) and polar uncharged/hydrophobic amino acids (less than -20 %) while showing significant increases in the levels of antioxidant/anti-inflammatory amino acids and peptides metabolites, including β-alanine (+24 %), carnosine (+33 %), homocarnosine (+27 %), kynurenine (+88 %), when compared to animals receiving control diets (p < 0.05). Further, we found that dietary LC-O3PUFAs impacted the levels of neurotransmitters and the mitochondrial metabolism, as evidenced by significant increases in the levels of N-acetylglutamate (+43 %) and acetyl CoA levels (+27 %), respectively. Interestingly, this dietary intervention resulted in a global correction of the pro-oxidant metabolic profile that characterized the SCI-mediated sensorimotor dysfunction. In summary, the significant benefits of metabolic homeostasis and increased antioxidant defenses unlock important neurorestorative pathways of dietary LC-O3PUFAs against SCI.
长链ω-3多不饱和脂肪酸(LC-O3PUFAs)在治疗和预防与脊髓损伤(SCI)相关的神经功能缺损方面显示出治疗潜力。然而,这些保护反应所涉及的机制仍不清楚。本功能代谢组学研究的目的是识别和确定膳食LC-O3PUFAs所靶向的主要代谢途径。将Sprague-Dawley大鼠喂食含有鲱鱼油衍生的LC-O3PUFAs的啮齿动物纯化饲料8周,然后进行假手术或脊髓挫伤手术。通过非靶向代谢组学,我们发现膳食LC-O3PUFAs调节了与损伤和假手术脊髓中的氨基酸代谢和自由基清除相关的重要生化特征。特别重要的是,与接受对照饮食的动物相比,喂食LC-O3PUFAs的动物的脊髓代谢组显示葡萄糖水平降低(-48%)和极性不带电荷/疏水氨基酸水平降低(低于-20%),同时抗氧化/抗炎氨基酸和肽代谢物水平显著增加,包括β-丙氨酸(+24%)、肌肽(+33%)、高肌肽(+27%)、犬尿氨酸(+88%)(p<0.05)。此外,我们发现膳食LC-O3PUFAs影响神经递质水平和线粒体代谢,分别表现为N-乙酰谷氨酸水平(+43%)和乙酰辅酶A水平(+27%)显著增加。有趣的是,这种饮食干预导致了以SCI介导的感觉运动功能障碍为特征的松果体代谢谱的全面纠正。总之,代谢稳态和增强的抗氧化防御的显著益处开启了膳食LC-O3PUFAs对抗SCI的重要神经修复途径。