Shanghai Ocean University, College of Fisheries and Life Science, Shanghai 201306, China; Key Laboratory of Tropical and Subtropical Fishery Resource Application and Cultivation, Ministry of Agriculture and Rural Affairs, Guangdong Provincial Key Laboratory of Aquatic Animal Immunology and Sustainable Aquaculture, Pearl River Fisheries Research Institute, Chinese Academy of Fishery Science, Guangzhou 510380, China.
Key Laboratory of Tropical and Subtropical Fishery Resource Application and Cultivation, Ministry of Agriculture and Rural Affairs, Guangdong Provincial Key Laboratory of Aquatic Animal Immunology and Sustainable Aquaculture, Pearl River Fisheries Research Institute, Chinese Academy of Fishery Science, Guangzhou 510380, China.
Comp Biochem Physiol Part D Genomics Proteomics. 2023 Mar;45:101044. doi: 10.1016/j.cbd.2022.101044. Epub 2022 Nov 29.
Multiple abiotic stresses are imposed on fish as a result of unprecedented changes in temperature and precipitation patterns in recent decades. It is unclear how teleosts respond to severe ambient salinity, alkalinity, and saline-alkalinity in terms of their metabolic and molecular osmoregulation processes. The metabolic reactions in the intestine of Oreochromis mossambicus under salinity (25 g/L, S_C), alkalinity (4 g/L, A_C), and saline-alkalinity (salinity: 25 g/L & alkalinity: 4 g/L, SA_C) stresses were examined in this research utilizing LC-MS/MS-based metabolomics. The findings demonstrated that the three osmotic-stressed groups' metabolic profiles were considerably different from those of the control group. Osmolytes, energy sources, free amino acids, and several intermediate metabolites were all synthetically adjusted as part of the osmoregulation associated with the salinity, alkalinity, and saline-alkalinity stress. Following osmotic stress, osmoregulation-related pathways, including the mTOR signaling pathway, TCA cycle, glycolysis/gluconeogenesis, etc., were also discovered in the intestine of O. mossambicus. Overall, our findings can assist in better comprehending the molecular regulatory mechanism in euryhaline fish under various osmotic pressures and can offer a preliminary profile of osmotic regulation.
由于近几十年来温度和降水模式的前所未有的变化,鱼类承受着多种非生物胁迫。目前尚不清楚硬骨鱼类如何在代谢和分子渗透调节过程中应对严重的环境盐度、碱度和盐碱度。本研究利用基于 LC-MS/MS 的代谢组学技术研究了罗非鱼(Oreochromis mossambicus)在盐度(25 g/L,S_C)、碱度(4 g/L,A_C)和盐碱度(盐度:25 g/L 和碱度:4 g/L,SA_C)胁迫下肠道中的代谢反应。研究结果表明,这三种渗透胁迫组的代谢谱与对照组有很大的不同。渗透调节相关的途径,包括 mTOR 信号通路、TCA 循环、糖酵解/糖异生等,也在罗非鱼的肠道中被发现。总之,我们的研究结果可以帮助更好地理解不同渗透压下广盐性鱼类的分子调控机制,并提供渗透调节的初步概况。