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代谢组学分析揭示了中华绒螯蟹鳃对碳酸盐碱度毒性的响应机制。

Metabolomics analysis reveals the response mechanism to carbonate alkalinity toxicity in the gills of Eriocheir sinensis.

机构信息

Key Open Laboratory of Cold Water Fish Germplasm Resources and Breeding of Heilongjiang Province, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin 150070, People's Republic of China; Engineering Technology Research Center of Saline-alkaline Water Fisheries (Harbin), Chinese Academy of Fishery Sciences, Harbin 150070, People's Republic of China.

Key Open Laboratory of Cold Water Fish Germplasm Resources and Breeding of Heilongjiang Province, Heilongjiang River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Harbin 150070, People's Republic of China; Engineering Technology Research Center of Saline-alkaline Water Fisheries (Harbin), Chinese Academy of Fishery Sciences, Harbin 150070, People's Republic of China.

出版信息

Comp Biochem Physiol C Toxicol Pharmacol. 2023 Jan;263:109487. doi: 10.1016/j.cbpc.2022.109487. Epub 2022 Oct 14.

Abstract

Aquatic water with carbonate alkalinity presents a survival challenge to aquatic animals. As an economically important crab, large quantities of Eriocheir sinensis are cultured in carbonate-type saline-alkali ponds, while the toxic effect on E. sinensis from carbonate alkalinity is still unclear. In this study, untargeted liquid chromatography-mass spectrometry metabolomics was performed to investigate the metabolic change caused by culture alkalinity, and confirmed distinct physiological response under gradient alkalinities. There were 39 differential metabolites obtained in the low-alkalinity group (4.35 mmol/L) versus control group, and "arachidonic acid metabolism" was enriched as a core response pathway. 93 differential metabolites were identified in the high-alkalinity group (17.43 mmol/L) versus control group, and a complex response net was manifested through integrated analysis, building by "steroid hormone biosynthesis", "phenylalanine, tyrosine and tryptophan biosynthesis", "phosphonate and phosphinate metabolism", "phenylalanine metabolism", "mineral absorption", "purine metabolism" and "carbon metabolism". This indicated the mobilization of energy reserves and the suppression of protein and amino acid catabolism were manifested in E. sinensis gills to defense high alkalinity stress. In addition, the persistently regulation of key metabolites under various alkalinity, including diuretic compound "spironolactone" and the antiphlogistic compound "LXB", suggested anti-inflammatory action and excretion regulation were initiated to defend the stress.

摘要

碳酸盐碱度的水生水体对水生动物构成生存挑战。作为一种经济上重要的螃蟹,大量的中华绒螯蟹在碳酸盐型盐碱池塘中养殖,而碳酸盐碱度对中华绒螯蟹的毒性作用尚不清楚。在这项研究中,我们采用非靶向液相色谱-质谱代谢组学方法研究了培养碱度引起的代谢变化,并证实了在不同碱度梯度下存在明显的生理反应。在低碱度组(4.35mmol/L)与对照组相比,有 39 个差异代谢物被鉴定,而“花生四烯酸代谢”被富集为核心响应途径。在高碱度组(17.43mmol/L)与对照组相比,有 93 个差异代谢物被鉴定,通过综合分析构建了一个复杂的响应网络,包括“甾体激素生物合成”、“苯丙氨酸、酪氨酸和色氨酸生物合成”、“膦酸和膦酸盐代谢”、“苯丙氨酸代谢”、“矿物质吸收”、“嘌呤代谢”和“碳代谢”。这表明中华绒螯蟹鳃中表现出能量储备的动员和蛋白质及氨基酸分解代谢的抑制,以抵御高碱度应激。此外,各种碱度下关键代谢物的持续调节,包括利尿剂化合物“螺内酯”和抗炎化合物“LXB”,表明炎症反应和排泄调节被启动以抵御应激。

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