González-Domínguez Raúl, García-Barrera Tamara, Vitorica Javier, Gómez-Ariza José Luis
Department of Chemistry and CC.MM, Faculty of Experimental Sciences, University of Huelva, Campus de El Carmen, Huelva, Spain.
Campus of Excellence International ceiA3, University of Huelva, Huelva, Spain.
Electrophoresis. 2015 Sep;36(18):2237-2249. doi: 10.1002/elps.201400544. Epub 2015 Apr 14.
Metabolomics has demonstrated a great potential for the study of pathological mechanisms occurring in brain from Alzheimer's disease patients and transgenic models. However, its application to peripheral samples is not so common, although it can provide interesting information about systemic abnormalities underlying to disease. This work represents the first metabolomic investigation of multiple peripheral organs (liver, kidney, spleen, and thymus) from the APP/PS1 mice by using a high-throughput approach based on direct infusion MS. Our findings demonstrated that these organs suffer significant metabolic impairments related to energy metabolism (e.g. glycolysis, Krebs cycle, β-oxidation), lipid homeostasis (e.g. cellular membrane breakdown and fatty acid metabolism), degradation of nucleotides, oxidative stress, hyperammonemia, and metabolism of amino acids. It is noteworthy that many of these alterations have been previously described in brain, confirming the systemic character of this neurodegenerative disorder and the utility of peripheral samples to understand its pathogenesis.
代谢组学已在研究阿尔茨海默病患者大脑及转基因模型中发生的病理机制方面展现出巨大潜力。然而,尽管其可提供有关疾病潜在全身异常的有趣信息,但其在周边样本中的应用并不常见。本研究通过基于直接进样质谱的高通量方法,首次对APP/PS1小鼠的多个外周器官(肝脏、肾脏、脾脏和胸腺)进行了代谢组学研究。我们的研究结果表明,这些器官存在与能量代谢(如糖酵解、三羧酸循环、β-氧化)、脂质稳态(如细胞膜分解和脂肪酸代谢)、核苷酸降解、氧化应激、高氨血症及氨基酸代谢相关的显著代谢损伤。值得注意的是,其中许多改变先前已在大脑中被描述过,这证实了这种神经退行性疾病的全身性特征以及周边样本在理解其发病机制方面的效用。