高温胁迫下虹鳟肝脏代谢组学研究
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李姗蔚(1996–),女,硕士研究生,研究方向为水生生物抗逆生长代谢组学.E-mail:lsw0303@126.com

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S941

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中央级公益性科研院所基本科研业务费专项(HSY202006M); 中国博士后科学基金面上项目(2020M681124); 黑龙江省博士后面上项目(LBHZ20099)


Metabolomics of rainbow trout liver under heat stress
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    摘要:

    为探究高温胁迫下虹鳟(Oncorhynchus mykiss)在细胞层面的代谢响应机制, 本研究开展 20 ℃ (T20)和 24 ℃(T24)的高温胁迫实验, 以肝脏为靶器官, 利用 UPLC-QTOF-MS 代谢组学技术结合 PCA、OPLS-DA 等多变量统计分析手段进行差异代谢物筛选, 确定与差异代谢物相关的关键代谢通路变化。结果显示, T20 组共筛选出 65 个差异代谢物, 主要富集于亚油酸代谢、半乳糖代谢、α-亚麻酸代谢、甘油磷脂代谢、嘌呤代谢、鞘脂代谢和谷胱甘肽代谢等 17 条代谢通路; T24 组共筛选出 80 个差异代谢物, 主要富集于亚油酸代谢、视黄醇代谢、甘油磷脂代谢、 鞘脂代谢、α-亚麻酸代谢、谷胱甘肽代谢和甘油酯代谢等 15 条代谢通路。其中, 脂质代谢受到的影响最为显著, 其次为氨基酸代谢。研究结果表明, 高温胁迫下虹鳟肝脏发生氧化应激, 短期内机体调动谷胱甘肽代谢途径加速清除活性氧, 但持续的高温胁迫导致了脂质代谢紊乱, DHA 和 α-亚麻酸等维持细胞正常功能代谢物的减少, 致使机体的免疫和抗氧化系统失衡, 进而造成肝细胞受损。本研究可为后续针对特定代谢通路的耐高温靶向调控研究提供方向, 同时为多视角探究虹鳟耐高温机制提供理论依据。

    Abstract:

    With the development of industries, human activities, particularly the burning of fossil fuels and deforestation, have worsened the natural greenhouse effect and aggravated the degree of global warming. It is estimated that the global average temperature will increase by 1–4 ℃ by the end of the century due to the continuous growth in CO2 emissions, which will simultaneously lead to inevitable increases in water temperatures. Rainbow trout (Oncorhynchus mykiss) is a commercially important cold-water fish. Due to its high dependence on ambient water temperature, temperature increase can adversely affect its growth and reproduction capacity and ultimately its health, even leading to death. Therefore, it is of great significance to understand the molecular mechanism of rainbow trout in response to heat stress. Metabolomics is a technology to analyze the disturbance of metabolic pathways in an organism by detecting the changes of endogenous metabolites after stimulation or disturbance. In combination with ultra-performance liquid chromatography coupled with quadrupole time-of-flight mass spectrometry (UPLC-QTOF-MS), it enables us to identify the holistic variable metabolites and related metabolic pathways in a living system by measuring the low-molecular-weight metabolites. In this study, heat stress experiments at 20 ℃ (T20 group) and 24 ℃ (T24 group) were carried out, taking the liver as the targeted organ, to investigate the metabolic response mechanism of rainbow trout under heat stress at the cellular level. UPLC-QTOF-MS metabolomics was used to explore the changes of endogenous metabolites in rainbow trout liver and find the differential metabolites and related metabolic pathways. Overall, 65 differential metabolites were screened in the T20 group, and were significantly enriched in 17 metabolomic pathways, including linoleic acid, galactose, α-linolenic acid, glycerophospholipid, purine, sphingolipid, and glutathione metabolisms. Meanwhile, 80 differential metabolites were screened in the T24 group, and were mainly enriched in 15 metabolomic pathways, including linoleic acid, retinol, glycerophospholipid, sphingolipid, α-linolenic acid, glutathione, and glyceride metabolisms. Among them, lipid metabolism was most significantly affected, followed by amino acid metabolism. In conclusion, heat stress induced oxidative stress in rainbow trout liver, causing activation of the glutathione metabolic pathways in a short period to accelerate the scavenging of reactive oxygen species. However, continuous heat stress damages the homeostasis of lipid metabolism, causing the reduction of metabolites such as DHA and α-linolenic acid that maintain the normal function of cells, resulting in an imbalance of the body’s immune and antioxidant systems, and further causing hepatocyte injury. This study provides insights for follow-up studies regarding the heat stress regulation mechanism of specific metabolic pathways, and a solid theoretical basis for the multi-perspective exploration of the heat resistance mechanism of rainbow trout.

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引用本文

李姗蔚,韩世成,刘英杰,丁璐,魏晓凤,王鹏,孙言春.高温胁迫下虹鳟肝脏代谢组学研究[J].中国水产科学,2022,29(8):1168-1178
LI Shanwei, HAN Shicheng, LIU Yingjie, DING Lu, WEI Xiaofeng, WANG Peng, SUN Yanchun. Metabolomics of rainbow trout liver under heat stress[J]. Journal of Fishery Sciences of China,2022,29(8):1168-1178

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  • 在线发布日期: 2022-09-08
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