代谢组学
炎症
神经炎症
脂多糖
全身炎症
天冬氨酸
下调和上调
新陈代谢
代谢组
生物
医学
化学
苹果酸
尿素循环
碳水化合物代谢
内分泌学
药理学
氨基酸代谢
生物化学
中枢神经系统
内科学
尿素
下丘脑
代谢途径
免疫学
作者
S. Sugiura,Masaru Taniguchi,Tomoki Kakei,Yuto Ohtani,Yumi Hayashi,Kazuaki Hisatsune,Tomomi Asano,Seiichiro Eguchi,Akira Iguchi,Kei Zaitsu
标识
DOI:10.1021/acs.jproteome.5c00309
摘要
Brain metabolomics and bioinformatics analyses were applied to investigate metabolic changes in a lipopolysaccharide (LPS)-induced acute inflammation mouse model. Six-week-old C57BL/6 mice received intraperitoneal LPS at 10 mg/kg to establish systemic inflammation. Control and model mice ( n = 5 each) were dissected under isoflurane anesthesia, and serum, cerebrum, hippocampus, cerebellum, and hypothalamus were collected. Serum IL-1β levels were significantly elevated in the model group, confirming the establishment of systemic inflammation. Brain metabolomics revealed eight significantly altered metabolites in the cerebrum, whereas no significant changes were observed in the hippocampus, cerebellum, or hypothalamus, thereby demonstrating a region-specific effect of LPS-induced inflammation. A Random Forest model robustly differentiated model mice from control mice. Among the altered metabolites, N -acetylaspartic acid (NAA), a neuronal marker, was significantly decreased. Aspartic acid metabolism was disrupted, urea accumulated via upregulation of the urea cycle, and both aspartic acid and malic acid were reduced, suggesting an impaired function of the malate-aspartate shuttle. These findings indicate that LPS-induced systemic inflammation specifically disrupts cerebral metabolism, characterized by impairments in aspartic acid metabolism and the malate-aspartate shuttle, with NAA and urea emerging as potential biomarkers of neuroinflammation.
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