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基于超高效液相色谱/质谱联用代谢组学技术分析大鼠血清谱评估气体爆炸伤。

Evaluation of Gas Explosion Injury Based on Analysis of Rat Serum Profile by Ultra-Performance Liquid Chromatography/Mass Spectrometry-Based Metabonomics Techniques.

机构信息

Department of Environmental and Occupational Health, School of Public Health, Xinxiang Medical University, Xinxiang, Henan Province, China 453003.

Institute of Toxicology, College of Preventive Medicine, Army Medical University, Chongqing, China 400038.

出版信息

Biomed Res Int. 2020 Jul 28;2020:8645869. doi: 10.1155/2020/8645869. eCollection 2020.

Abstract

Gas explosion can lead to serious global public health issues. Early period gas explosion injury (GEI) can induce a series of histopathologic and specific metabolic changes. Unfortunately, it is difficult to treat GEI thoroughly. To date, the specific molecular mechanism of GEI is still unclear. To accurately diagnose and provide comprehensive clinical intervention, we performed a global analysis of metabolic alterations involved in GEI. The physiological and behavioral indicators' changes of rats after gas explosion were observed. These metabolic alterations were first investigated in a rat model using serum metabonomics techniques and multivariate statistical analysis. Significant heart rate (HR), mean blood pressure (mBP), and neurobehavioral index changes were observed in the GEI group after gas explosion. UPLC-MS revealed evident separated clustering between the control and GEI groups using supervised partial least squares discriminant analysis (PLS-DA). We designed an integrated metabonomics study for identifying reliable biomarkers of GEI using a time-course analysis of discriminating metabolites in this experiment. The metabonomics analysis showed alterations in a number of biomarkers (21 from serum). The meaningful biomarkers of GEI provide new insights into the pathophysiological changes and molecular mechanisms of GEI, including the disturbances in oxidative stress and neuroinflammatory reaction, as well as in metabolism of lipids, glucose, and amino acids in rats, suggesting that the process of GEI in humans is likely to be comprehensive and dynamic. Correlations between the GEI group and the biomarkers identified from the rat model will be further explored to elucidate the metabolic pathways responsible for GEI in the human body.

摘要

气体爆炸会导致严重的全球公共卫生问题。早期的气体爆炸伤(GEI)会引起一系列组织病理学和特定代谢变化。不幸的是,GEI 很难彻底治疗。迄今为止,GEI 的具体分子机制仍不清楚。为了准确诊断和提供全面的临床干预,我们对涉及 GEI 的代谢变化进行了全球分析。观察了大鼠气体爆炸后生理和行为指标的变化。使用血清代谢组学技术和多变量统计分析,首先在大鼠模型中研究了这些代谢变化。在气体爆炸后,GEI 组的大鼠心率(HR)、平均血压(mBP)和神经行为指数均发生显著变化。UPLC-MS 利用有监督的偏最小二乘判别分析(PLS-DA)揭示了对照组和 GEI 组之间明显的分离聚类。我们设计了一个综合代谢组学研究,通过对实验中区分代谢物的时间过程分析,确定 GEI 的可靠生物标志物。代谢组学分析显示了许多生物标志物(来自血清的 21 种)的变化。GEI 的有意义生物标志物为 GEI 的病理生理变化和分子机制提供了新的见解,包括氧化应激和神经炎症反应的紊乱,以及大鼠脂质、葡萄糖和氨基酸代谢的紊乱,这表明 GEI 在人体中的过程可能是全面和动态的。将 GEI 组与从大鼠模型中鉴定出的生物标志物之间的相关性进一步探索,以阐明人体中导致 GEI 的代谢途径。

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