Sun Shukui, Wang Lei, Chen Huapeng, Zheng Da, Wang Xinxin, Yu Haoran, Liang Yesong, Sun Junlong, Luo Jian, Song Feibiao
School of Marine Biology and Fisheries, Collaborative Innovation Center of Nanfan and High-Efficiency Tropical Agriculture, Hainan University; State Key Laboratory of Marine Resource Utilization in South China Sea; Hainan Aquaculture Breeding Engineering Research Center; Sanya Nanfan Research Institute of Hainan University; Hainan University, Haikou 570228, China; Aquaculture technology, Department of animal science, Animal Husbandry and Veterinary College, Jiangsu Vocational College of Agriculture and Forestry, Jurong, Jiangsu 212400, China.
School of Marine Biology and Fisheries, Collaborative Innovation Center of Nanfan and High-Efficiency Tropical Agriculture, Hainan University; State Key Laboratory of Marine Resource Utilization in South China Sea; Hainan Aquaculture Breeding Engineering Research Center; Sanya Nanfan Research Institute of Hainan University; Hainan University, Haikou 570228, China; Tianmen Fisheries Technology Extension Station, Tianmen 431700, China.
Comp Biochem Physiol Part D Genomics Proteomics. 2025 Sep;55:101507. doi: 10.1016/j.cbd.2025.101507. Epub 2025 Apr 9.
In recent years, the scale of Trachinotus blochii aquaculture has been expanding. Our previous research identified glutamine metabolism related genes as key regulators of T. blochii growth. Recently, fish essential amino acids have been developed as nutritional additives in aquaculture feed. To explore the effects of glutamine on growth related genes in T. blochii, we formulated T. blochii feed and conducted a feeding trial. No exogenous glutamine was added to the control group, alongside four experimental groups supplemented with 0.3 %, 0.6 %, 0.9 %, and 1.2 % exogenous glutamine, respectively. After eight weeks feeding, liver enzyme activity analysis indicated that adding 0.3 % and 0.6 % exogenous glutamine reduced MDA levels. Similarly, T-AOC and T-SOD activities were higher in the livers of T. blochii supplemented with 0.3 % glutamine. Liver samples were also collected for transcriptome sequencing. The results showed that the oxidative phosphorylation pathway was activated, and the fat digestion system pathway was significantly enriched following the addition of exogenous glutamine. Co-mRNA network analysis showed enrichment in a large number of genes related to the ubiquinone oxidoreductase family. However, significant differences were observed in disease related genes when glutamine was added at 0.9 % and 1.2 %. In summary, supplementing 0.3 % to 0.6 % glutamine in T. blochii feed can enhance amino acid metabolism and fat utilization. It can also activate pathways related to oxidative phosphorylation and fat digestion and absorption, thereby making more energy available to influence other physiological factors. These results provide an important reference for the optimization of the feed formula for T. blochii.
近年来,卵形鲳鲹养殖规模不断扩大。我们之前的研究确定谷氨酰胺代谢相关基因是卵形鲳鲹生长的关键调节因子。最近,鱼类必需氨基酸已被开发用作水产养殖饲料中的营养添加剂。为了探究谷氨酰胺对卵形鲳鲹生长相关基因的影响,我们配制了卵形鲳鲹饲料并进行了投喂试验。对照组不添加外源谷氨酰胺,另外四个实验组分别添加0.3%、0.6%、0.9%和1.2%的外源谷氨酰胺。投喂八周后,肝脏酶活性分析表明,添加0.3%和0.6%的外源谷氨酰胺可降低丙二醛水平。同样,添加0.3%谷氨酰胺的卵形鲳鲹肝脏中总抗氧化能力和超氧化物歧化酶活性较高。还采集了肝脏样本进行转录组测序。结果表明,添加外源谷氨酰胺后,氧化磷酸化途径被激活,脂肪消化系统途径显著富集。共mRNA网络分析显示大量与泛醌氧化还原酶家族相关的基因富集。然而,当添加0.9%和1.2%的谷氨酰胺时,疾病相关基因出现显著差异。综上所述,在卵形鲳鲹饲料中添加0.3%至0.6%的谷氨酰胺可增强氨基酸代谢和脂肪利用。它还可以激活与氧化磷酸化以及脂肪消化吸收相关的途径,从而提供更多能量来影响其他生理因素。这些结果为卵形鲳鲹饲料配方的优化提供了重要参考。