低温胁迫下红沼泽小龙虾克氏原螯虾呼吸代谢与代谢组学研究

IF 1.9 3区 生物学 Q1 ZOOLOGY
Yu Ding, Wenbin Sha, Yunfei Sun, Yongxu Cheng
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引用次数: 0

摘要

在水稻-小龙虾综合养殖系统中,克氏原螯虾需要在环沟中度过漫长的冬季,容易受到低温胁迫,特别是在寒潮等低温气候频繁的中国北方地区。为了实验研究克拉氏杆菌对低温胁迫的代谢反应,通过缓慢均匀冷却将温度从对照组(23°C)降低到低温组(9°C、5°C和1°C),并收集分子和生理样品进行测量。结果表明,低温胁迫破坏了鳃膜和鳃组织上皮,液泡面积增加,血细胞减少且分布不规则。随着温度的降低,clarkii的耗氧量、氨排泄率和最大代谢率逐渐降低,氧氮比虽有所降低但仍保持在较高水平,代谢供能物质始终以脂类和碳水化合物为主。低温胁迫下,丙酮酸激酶活性有随温度降低而升高的趋势,己糖激酶、琥珀酸脱氢酶和乳酸脱氢酶活性逐渐降低。与对照组相比,低温组筛选出183种差异代谢物,主要富集于氨基酸代谢和柠檬酸循环代谢途径。综上所述,低温胁迫下,鳃受到损伤,呼吸代谢降低,糖酵解增强。由于柠檬酸循环代谢受到抑制,克氏疟原虫需要通过增加氨基酸代谢来抵抗低温胁迫,以提供更多的能量来维持细胞活性。研究结果揭示了克氏疟原虫对低温胁迫代谢响应机制的代谢响应机制,为克氏疟原虫耐低温菌株的选育提供理论参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Respiratory Metabolism and Metabolomics of Red Swamp Crayfish Procambarus clarkii Under Low Temperature Stress

In the integrated rice-crayfish aquaculture systems, crayfish Procambarus clarkii need to spend a long winter in the ring ditch, which is vulnerable to low temperature stress, especially in the northern part of China, where cold waves and other low-temperature climates are frequent. To study the metabolic response of P. clarkii to low temperature stress experimentally, the temperature was lowered from the control (23°C) to the low temperature group (9°C, 5°C, and 1°C) by slow and uniform cooling, and molecular and physiological samples were collected for measurement. The results showed that low temperature stress damaged the gill membrane and the epithelial layer of gill tissues, with an increase in vacuoles area and a reduced and irregular distribution of hemocytes. As the temperature decreased, the oxygen consumption rate, ammonia excretion rate and maximum metabolic rate of P. clarkii decreased gradually, the oxygen-nitrogen ratio decreased but still remained at a high level, and the metabolic energy supply substances were always mainly lipids and carbohydrates. The pyruvate kinase activity tended to increase with decreasing temperature under low temperature stress, while hexokinase, succinate dehydrogenase and lactate dehydrogenase activities decreased gradually. The 183 differential metabolites were screened in the low temperature group compared with the control mostly enriched in amino acid metabolism and citrate cycle metabolic pathways. In conclusion, under low temperature stress, the gill was damaged, respiratory metabolism decreased, and glycolysis was enhanced. Since the citrate cycle metabolism was suppressed, P. clarkii needed to resist low temperature stress by increasing the amino acid metabolism to provide more energy to maintain cellular activity. The results unraveled metabolic response mechanisms of metabolic response mechanism of P. clarkii to low temperature stress, and provided theoretical references for the selection and breeding of low-temperature-tolerant strains of P. clarkii.

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来源期刊
Journal of experimental zoology. Part A, Ecological and integrative physiology
Journal of experimental zoology. Part A, Ecological and integrative physiology Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
4.90
自引率
3.60%
发文量
0
期刊介绍: The Journal of Experimental Zoology – A publishes articles at the interface between Development, Physiology, Ecology and Evolution. Contributions that help to reveal how molecular, functional and ecological variation relate to one another are particularly welcome. The Journal publishes original research in the form of rapid communications or regular research articles, as well as perspectives and reviews on topics pertaining to the scope of the Journal. Acceptable articles are limited to studies on animals.
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