Ma Dengqin, Li Bing, Xin Bang, Xie Bingfang, Zhu Enpen, Zhang Zihao, Ha Xiaoqin
School of Basic Medical Sciences, Gansu University of Chinese Medicine, Lanzhou, 730099, China.
The 940th Hospital of Joint Logistics Support Force of Chinese People's Liberation Army, Lanzhou, 730099, China.
Biochem Biophys Rep. 2025 Feb 18;41:101943. doi: 10.1016/j.bbrep.2025.101943. eCollection 2025 Mar.
To investigate the associations between metabolic changes and functions, including energy metabolism, immune response, and redox balance, under short-term hypobaric hypoxia exposure. Non-targeted metabolomics and bioinformatics analysis were applied to explore the adaptive mechanisms of organisms in hypobaric hypoxia.
Healthy adult male Sprague-Dawley rats were placed in environments simulating altitudes of 6500 m (HC group) and 1588 m (Control group). After 14 days, arterial serum samples were analyzed using Liquid Chromatography-Tandem Mass Spectrometry (LC-MS/MS). Significant metabolites (P < 0.05, VIP >1) were identified, and KEGG enrichment analysis was conducted. Differential metabolites were globally analyzed with MetaboAnalyst 5.0.
A total of 117 significantly altered metabolites were identified. In the HC group, 84 metabolites significantly increased, while 33 metabolites significantly decreased compared to the Control group. KEGG enrichment analysis revealed significant metabolic pathways, including the PPAR signaling pathway, bile secretion, arginine biosynthesis, alcoholism, and cholesterol metabolism (P < 0.05). Global analysis indicated that these differential metabolites were involved in various pathways, such as energy metabolism, amino acid metabolism, nucleotide metabolism, lipid metabolism, vitamin and cofactor metabolism, steroid metabolism, neurotransmitter metabolism, and heme metabolism, all of which play crucial roles in multiple biological processes.
Short-term hypobaric hypoxia exposure significantly altered the metabolite profiles in the arterial serum samples of rats, revealing adaptive metabolic reprogramming in energy metabolism, redox balance, immune function, endocrine regulation, and neurological systems.
研究短期低压低氧暴露下代谢变化与功能之间的关联,包括能量代谢、免疫反应和氧化还原平衡。应用非靶向代谢组学和生物信息学分析来探索生物体在低压低氧环境中的适应机制。
将健康成年雄性Sprague-Dawley大鼠置于模拟海拔6500米(高压氧组)和1588米(对照组)的环境中。14天后,采用液相色谱-串联质谱法(LC-MS/MS)分析动脉血清样本。鉴定出显著代谢物(P < 0.05,VIP >1),并进行KEGG富集分析。使用MetaboAnalyst 5.0对差异代谢物进行全局分析。
共鉴定出117种显著改变的代谢物。与对照组相比,高压氧组中84种代谢物显著增加,33种代谢物显著减少。KEGG富集分析揭示了显著的代谢途径,包括PPAR信号通路、胆汁分泌、精氨酸生物合成、酒精中毒和胆固醇代谢(P < 0.05)。全局分析表明,这些差异代谢物参与了各种途径,如能量代谢、氨基酸代谢、核苷酸代谢、脂质代谢、维生素和辅因子代谢、类固醇代谢、神经递质代谢和血红素代谢,所有这些在多个生物学过程中都起着关键作用。
短期低压低氧暴露显著改变了大鼠动脉血清样本中的代谢物谱,揭示了能量代谢、氧化还原平衡、免疫功能、内分泌调节和神经系统中的适应性代谢重编程。