Key Laboratory of Environment Controlled Aquaculture (KLECA), Ministry of Education, 52 Heishijiao Street, Dalian 116023, China; College of Fisheries and Life Science, Dalian Ocean University, Dalian 116023, China.
Key Laboratory of Environment Controlled Aquaculture (KLECA), Ministry of Education, 52 Heishijiao Street, Dalian 116023, China; College of Marine Technology and Environment, Dalian Ocean University, Dalian 116023, China.
Sci Total Environ. 2021 May 15;769:145155. doi: 10.1016/j.scitotenv.2021.145155. Epub 2021 Jan 14.
Temperature variations have significant impacts on the growth and development of fish. In this study, the effects of temperature on the growth and development of European seabass (Dicentrarchus labrax) were investigated using ultra-performance liquid chromatography-tandem mass spectrometry-based metabolomics. Three groups of fish were exposed to various temperatures for 60 days: T1-E (10 °C), T2-E (15 °C), and T3-E (20 °C). Afterward, the temperature of all groups was increased to 20 °C and maintained for 62 days (T1-S, T2-S, T3-S). The livers were extracted for subsequent analysis. In the first stage of the experiment, the growth rate was highest in the T3-E group, followed by the T1-E and T2-E groups. The following metabolites identified by comparative analysis were found to be elevated: L-thyroxine, cysteamine, uridine diphosphate (UDP)-glucose, α-ketoglutaric acid, carbamoyl phosphate, and guanidine acetic acid of the T1-E group. Pathway analysis of the altered metabolites suggested changes in glucose metabolism, arginine and proline metabolism, the tricarboxylic acid cycle, the ornithine cycle, histidine metabolism, and taurine metabolism, which were involved with growth and development. Meanwhile, partial compensatory growth was observed in fish in the T1-S and T2-S groups. Metabolites identified as potential markers of growth included L-cysteine, taurocholic acid, UDP-glucose, and L-thyroxine. The significantly changed metabolic pathways were cysteine and methionine metabolism, bile secretion, tyrosine metabolism, and hypotaurine metabolism. We screened out the marker metabolites and metabolic pathway could provide important insights into the potential mechanisms of temperature affects the growth and development of European seabass. All in all, our research can provide theoretical basis and technical guidance for efficiently culturing European seabass.
温度变化对鱼类的生长和发育有显著影响。本研究采用基于超高效液相色谱-串联质谱的代谢组学方法,研究了温度对欧洲鲈鱼(Dicentrarchus labrax)生长和发育的影响。将三组鱼分别暴露在不同温度下 60 天:T1-E(10°C)、T2-E(15°C)和 T3-E(20°C)。之后,所有组的温度均升高至 20°C 并保持 62 天(T1-S、T2-S 和 T3-S)。然后提取肝脏进行后续分析。在实验的第一阶段,T3-E 组的生长速度最快,其次是 T1-E 和 T2-E 组。通过比较分析发现,T1-E 组升高的代谢物有:L-甲状腺素、半胱胺、尿苷二磷酸(UDP)-葡萄糖、α-酮戊二酸、氨甲酰磷酸和胍基乙酸。改变代谢物的途径分析表明,葡萄糖代谢、精氨酸和脯氨酸代谢、三羧酸循环、鸟氨酸循环、组氨酸代谢和牛磺酸代谢发生了变化,这些代谢途径与生长和发育有关。同时,T1-S 和 T2-S 组的鱼出现了部分补偿性生长。鉴定为生长潜在标志物的代谢物包括 L-半胱氨酸、牛磺胆酸、UDP-葡萄糖和 L-甲状腺素。显著改变的代谢途径包括半胱氨酸和蛋氨酸代谢、胆汁分泌、酪氨酸代谢和次牛磺酸代谢。我们筛选出的标记代谢物和代谢途径可以为温度影响欧洲鲈鱼生长和发育的潜在机制提供重要见解。总之,我们的研究可以为高效养殖欧洲鲈鱼提供理论基础和技术指导。