Based on the Metabolomic Approach the Energy Metabolism Responses of Oriental River Prawn Macrobrachium nipponense Hepatopancreas to Acute Hypoxia and Reoxygenation
文献类型: 外文期刊
作者: Sun, Shengming 1 ; Guo, Zhongbao 2 ; Fu, Hongtuo 1 ; Ge, Xianping 1 ; Zhu, Jian 1 ; Gu, Zhimin 3 ;
作者机构: 1.Chinese Acad Fishery Sci, Key Lab Genet Breeding & Aquaculture Biol Freshwa, Minist Agr, Freshwater Fisheries Res Ctr, Wuxi, Peoples R China
2.Guangxi Acad Fishery Sci, Nanning, Peoples R China
3.Agr Minist, Key Lab Hlth Freshwater Aquaculture, Zhejiang Inst Freshwater Fisheries, Huzhou, Peoples R China
关键词: Macrobrachium nipponense; metabolomics; hypoxia; hepatopancreas; oxidative stress
期刊名称:FRONTIERS IN PHYSIOLOGY ( 影响因子:4.566; 五年影响因子:4.804 )
ISSN: 1664-042X
年卷期: 2018 年 9 卷
页码:
收录情况: SCI
摘要: Hypoxia represents a major physiological challenge for prawns and is a problem in aquaculture. Therefore, an understanding of the metabolic response mechanism of economically important prawn species to hypoxia and re-oxygenation is essential. However, little is known about the intrinsic mechanisms by which the oriental river prawn Macrobrachium nipponense copes with hypoxia at the metabolic level. In this study, we conducted gas chromatography-mass spectrometry based metabolomics studies and assays of energy metabolism-related parameters to investigate the metabolic mechanisms in the hepatopancreas of M. nipponense in response to 2.0 O-2/L hypoxia for 6 and 24h, and reoxygenation for 6h following hypoxia for 24 h. Prawns under hypoxic stress displayed higher glycolysis-related enzyme activities and lower mRNA expression levels of aerobic respiratory enzymes than those in the normoxic control group, and those parameters returned to control levels in the reoxygenated group. Our results showed that hypoxia induced significant metabolomic alterations in the prawn hepatopancreas within 24 h. The main metabolic alterations were depletion of amino acids and 2-hydroxybutanoic acid and accumulation of lactate. Further, the findings indicated that hypoxia disturbed energy metabolism and induced antioxidant defense regulation in prawns. Surprisingly, recovery from hypoxia (i.e., reoxygenation) significantly affected 25 metabolites. Some amino acids (valine, leucine, isoleucine, lysine, glutamate, and methionine) were markedly decreased compared to the control group, suggesting that increased degradation of amino acids occurred to provide energy in prawns at reoxygenation conditions. This study describes the acute metabolomic alterations that occur in prawns in response to hypoxia and demonstrates the potential of the altered metabolites as biomarkers of hypoxia.
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