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低氧降低了尼罗罗非鱼红细胞的热上限极限,导致其出现细胞和核异常。

Hypoxia reduced upper thermal limits causing cellular and nuclear abnormalities of erythrocytes in Nile tilapia, Oreochromis niloticus.

机构信息

Laboratory of Fish Ecophysiology, Department of Fisheries Management, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh.

Department of Fish Biology and Biotechnology, Faculty of Fisheries, Chattogram Veterinary and Animal Sciences University, Chattogram, 4225, Bangladesh.

出版信息

J Therm Biol. 2020 May;90:102604. doi: 10.1016/j.jtherbio.2020.102604. Epub 2020 Apr 23.

Abstract

Global warming is a threat across the world that leads to estimates of the upper thermal limits of ectothermic species. Increased water temperature up-regulates oxygen consumption and metabolic rates, and alters the physiological processes. In this study, we identified the critical thermal maxima (CTmax) and physiological responses under normoxia and hypoxia in Nile tilapia, Oreochromis niloticus. CTmax was 41.25 °C under hypoxia and 44.50 °C under normoxia. Compared to normoxia, lower values of hemoglobin (Hb) and red blood cells (RBCs) were observed at the CTmax under hypoxia. In contrast, higher values of white blood cells (WBCs) and blood glucose (Glu) levels were observed at the CTmax under hypoxia. Consequently, higher frequencies of micronucleus, cellular and nuclear abnormalities of erythrocytes were observed at the CTmax under hypoxia. These results suggest that high temperature tolerance and subsequent physiology are significantly affected by the oxygen supply in Nile tilapia. As climate vulnerability is intensifying day by day, this data will be helpful in successful management practice for the aquatic environment having low oxygen content.

摘要

全球变暖是一个全球性的威胁,导致了对变温动物物种热上限的估计。水温升高会增加氧气消耗和代谢率,并改变生理过程。在这项研究中,我们确定了尼罗罗非鱼(Oreochromis niloticus)在常氧和缺氧条件下的临界热极值(CTmax)和生理反应。缺氧条件下的 CTmax 为 41.25°C,常氧条件下的 CTmax 为 44.50°C。与常氧相比,缺氧条件下 CTmax 时血红蛋白(Hb)和红细胞(RBC)的值较低。相比之下,缺氧条件下 CTmax 时白细胞(WBC)和血糖(Glu)水平较高。因此,在缺氧条件下 CTmax 时观察到红细胞的微核、细胞和核异常的频率更高。这些结果表明,高温耐受性和随后的生理机能受到尼罗罗非鱼供氧的显著影响。随着气候脆弱性日益加剧,这些数据将有助于对低含氧量水生态环境进行成功的管理实践。

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