Kumar Neeraj, Krishnani K K, Kumar Paritosh, Sharma Rupam, Baitha Raju, Singh Dilip Kumar, Singh Narendra Pratap
ICAR-National Institute of Abiotic Stress Management (NIASM), Baramati, Pune 413115, India.
ICAR-National Institute of Abiotic Stress Management (NIASM), Baramati, Pune 413115, India.
J Therm Biol. 2018 Oct;77:111-121. doi: 10.1016/j.jtherbio.2018.08.011. Epub 2018 Aug 20.
Unexpected fluctuations in weather parameters due to global climate change have been observed in all ecosystems worldwide. The aquatic ecosystem shelters a great diversity of fishes in the upper region of the ecosystem which adversely get affected due to their poikilothermic nature. The present study was designed to elucidate the impact of critical temperature minima (CTMin), lethal temperature minima (LTMin), critical temperature maxima (CTMax), and lethal temperature maxima (LTMax) on Channa striatus. Biologically synthesized silver nanoparticles (Ag-NPs) were evaluated for their potential to enhance thermal tolerance and improve the activities of biochemical enzymes of C. striatus reared under lead (Pb) and high temperature (34 °C) for 50 days. Three iso-caloric and iso-nitrogenous diets which included a basal diet and two supplemented diets with Ag-NPs @ 0.5 mg/kg, and 1 mg/kg were used in the study. Results suggested that CTMin and LTMin were significantly (p < 0.01) reduced and CTMax and LTMax were enhanced in the group fed with 0.5 mg/kg Ag-NPs supplemented feed. Pre-exposure to high temperature led to enhanced CTMax and LTMax in C. striatus. The biochemical enzymes involved in protein metabolism, carbohydrate metabolism, acetylcholine esterase and antioxidant activities were found to be normal in fish fed with 0.5 mg/kg Ag-NPs supplemented diet. Bioaccumulation of silver and Pb was determined in different fish tissues and experimental water. Overall, the incorporation of Ag-NPs at 0.5 mg/kg in diet can confer protection to fish against Pb and thermal stress and enhance thermal tolerance of C. striatus.
全球气候变化导致的天气参数意外波动在全球所有生态系统中均有观测到。水生生态系统在其上层区域庇护着种类繁多的鱼类,而这些鱼类因其变温特性受到不利影响。本研究旨在阐明临界低温(CTMin)、致死低温(LTMin)、临界高温(CTMax)和致死高温(LTMax)对条纹鳢的影响。对生物合成的银纳米颗粒(Ag-NPs)进行评估,以探究其在铅(Pb)和高温(34°C)条件下饲养50天的条纹鳢中增强热耐受性和提高生化酶活性的潜力。本研究使用了三种等热量和等氮量的饲料,包括基础饲料以及两种添加了0.5 mg/kg和1 mg/kg Ag-NPs的补充饲料。结果表明,在喂食添加了0.5 mg/kg Ag-NPs饲料的组中,CTMin和LTMin显著降低(p < 0.01),而CTMax和LTMax则有所提高。预先暴露于高温导致条纹鳢的CTMax和LTMax增强。在喂食添加了0.5 mg/kg Ag-NPs饲料的鱼中,参与蛋白质代谢、碳水化合物代谢、乙酰胆碱酯酶和抗氧化活性的生化酶被发现正常。测定了不同鱼组织和实验水中银和铅的生物累积情况。总体而言,在饲料中添加0.5 mg/kg的Ag-NPs可以保护鱼类免受铅和热应激的影响,并增强条纹鳢的热耐受性。