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首页> 外文期刊>RSC Advances >Exploring the metabolic biomarkers and pathway changes in crucian under carbonate alkalinity exposure using high-throughput metabolomics analysis based on UPLC-ESI-QTOF-MS
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Exploring the metabolic biomarkers and pathway changes in crucian under carbonate alkalinity exposure using high-throughput metabolomics analysis based on UPLC-ESI-QTOF-MS

机译:使用基于UPLC-ESI-QTOF-MS的高通量代谢组学分析探索碳酸盐碱暴露下cru鱼的代谢生物标志物和途径变化

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The aims of this study is to explore the metabolomic biomarker and pathway changes in crucian under carbonate alkalinity exposures using high-throughput metabolomics analysis based on ultra-performance liquid chromatography-electrospray ionization-quadrupole time of flight-tandem mass spectrometry (UPLC-ESI-QTOF-MS) for carrying out adaptive evolution of fish in environmental exposures and understanding molecular physiological mechanisms of saline–alkali tolerance in fishes. Under 60 day exposure management, the UPLC-ESI-QTOF-MS technology, coupled with a pattern recognition approach and metabolic pathway analysis, was utilized to give insight into the metabolic biomarker and pathway changes. In addition, biochemical parameters in response to carbonate alkalinity in fish were detected for chronic impairment evaluation. A total of twenty-seven endogenous metabolites were identified to distinguish the biochemical changes in fish in clean water under exposure to different concentrations of carbonate alkalinity (CA); these mainly involved amino acid synthesis and metabolism, arachidonic acid metabolism, glyoxylate and dicarboxylate metabolism, pyruvate metabolism and the citrate cycle (TCA cycle). Compared with the control group, CA exposure increased the level of blood ammonia; TP; ALB; Gln in the liver and gills; GS; urea in blood, the liver and gills; CREA; CPS; Glu and LDH; and decreased the level of weight gain rate, oxygen consumption, discharge rate of ammonia, SOD, CAT, ALT, AST and Na ~(+) /K ~(+) -ATPase. At low concentrations, CA can change the normal metabolism of fish in terms of changing the osmotic pressure regulation capacity, antioxidant capacity, ammonia metabolism and liver and kidney function to adapt to the CA exposure environment. As the concentration of CA increases, various metabolic processes in crucian are inhibited, causing chronic damage to the body. The results show that the metabolomic strategy is a potentially powerful tool for identifying the mechanisms in response to different environmental exposomes and offers precious information about the chronic response of fish to CA.
机译:本研究的目的是基于超高效液相色谱-电喷雾电离-四极杆飞行时间质谱(UPLC-ESI-)的高通量代谢组学分析,探索碳酸盐碱暴露下cru鱼的代谢组学生物标志物和途径变化。 QTOF-MS)用于在环境暴露条件下对鱼类进行适应性进化,并了解鱼类对盐碱耐受性的分子生理机制。在60天的暴露管理下,UPLC-ESI-QTOF-MS技术与模式识别方法和代谢途径分析相结合,可用于深入了解代谢生物标志物和途径变化。此外,检测鱼类中碳酸盐碱度的生化参数,以进行慢性损伤评估。总共鉴定了27种内源性代谢物,以区分暴露于不同浓度的碳酸盐碱度(CA)的净水中鱼的生化变化。这些主要涉及氨基酸的合成和代谢,花生四烯酸的代谢,乙醛酸和二羧酸的代谢,丙酮酸的代谢和柠檬酸循环(TCA循环)。与对照组相比,CA暴露增加了血氨水平。 TP; ALB;肝脏和g中有Gln; GS;血液,肝脏和g中的尿素; CREA; CPS;谷氨酸和LDH;降低了体重增加率,耗氧量,氨,SOD,CAT,ALT,AST和Na〜(+)/ K〜(+)-ATPase的排放水平。在低浓度下,CA可以通过改变渗透压调节能力,抗氧化能力,氨代谢以及肝肾功能来改变鱼类的正常代谢,以适应CA暴露环境。随着CA浓度的增加,cru鱼的各种代谢过程均受到抑制,从而对身体造成慢性损害。结果表明,代谢组学策略是一种潜在的强大工具,可用于识别对不同环境暴露的应答机制,并提供有关鱼类对CA的慢性应答的宝贵信息。

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