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High-throughput metabolomics enables metabolite biomarkers and metabolic mechanism discovery of fish in response to alkalinity stress

机译:高通量代谢组学使鱼类的代谢物生物标志物和代谢机制能够响应碱度胁迫而被发现

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摘要

High throughput mass spectrometry (MS)-based metabolomics is a popular platform for small molecule metabolites analyses that are widely used for detecting biomarkers in the research field of environmental assessment. Crucian carp ( Carassius carassius , CC) is an economically and ecologically important fish in Asia. It can adapt to extremely high alkalinity, providing us with valuable material to understand the adaptation mechanism for extreme environmental stress. However, the information on the metabolite biomarkers and metabolic mechanisms of CC exposed to alkaline stress is not entirely clear. We applied high-throughput UPLC-Q-TOF/MS combined with chemometrics to identify changes in the metabolome of CC exposed to different concentrations of alkalinity for long term effects. Metabolic differences among alkalinity-treated groups were identified by multivariate statistical analysis. Further, 7 differential metabolites were found after exposure to alkaline conditions. In total, 23 metabolic pathways of these differential metabolites were significantly affected. Alkalinity exposure resulted in widespread change in metabolic profiles in the plasma with disruptions in the phenylalanine metabolism, glycine, serine and threonine metabolism, pyruvate metabolism, tyrosine metabolism, etc. The integrated pathway analysis of the associated metabolites showed that tRNA charging, L -cysteine degradation II, superpathway of methionine degradation, L -serine degradation, tyrosine biosynthesis IV, etc. appear to be the most significantly represented functional categories. Overall, this study demonstrated that metabolic changes in CC played a role in adaptation to the highly alkaline environmental stress.
机译:基于高通量质谱(MS)的代谢组学是用于小分子代谢物分析的流行平台,在环境评估研究领域广泛用于检测生物标志物。鱼(Carassius carassius,CC)是亚洲经济上和生态上重要的鱼类。它可以适应极高的碱度,为我们提供有价值的材料,以了解对极端环境压力的适应机制。然而,关于碱性胁迫下CC的代谢物生物标志物和代谢机制的信息尚不完全清楚。我们将高通量的UPLC-Q-TOF / MS与化学计量学结合使用,以鉴定长期暴露于不同浓度碱度下的CC代谢组的变化。通过多元统计分析确定了碱度处理组之间的代谢差异。此外,在碱性条件下发现7种差异代谢产物。总计,这些差异代谢物的23种代谢途径受到显着影响。碱度暴露导致血浆中代谢特征的广泛变化,其中苯丙氨酸代谢,甘氨酸,丝氨酸和苏氨酸代谢,丙酮酸代谢,酪氨酸代谢等受到破坏。相关代谢产物的综合通路分析表明,tRNA电荷,L-半胱氨酸降解II,蛋氨酸降解,L-丝氨酸降解,酪氨酸生物合成IV等的超途径似乎是最明显代表的功能类别。总体而言,这项研究表明CC的代谢变化在适应高度碱性环境压力中发挥了作用。

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