Haque Md Ayenuddin, Jewel Md Abu Sayed, Akter Nasrin, Akter Sumaiya, Barman Arun Chandra, Nurul Amin S M, Arai Takaomi, Albeshr Mohammed Fahad, Ngah Norhayati, Hossain Mohammad Belal
Department of Oceanography and Blue Economy, Faculty of Fisheries, Habiganj Agricultural University, Habiganj 3300, Bangladesh.
Department of Fisheries, Faculty of Agriculture, University of Rajshahi, Rajshahi 6205, Bangladesh.
Aquac Nutr. 2025 Aug 24;2025:7382715. doi: 10.1155/anu/7382715. eCollection 2025.
Understanding how nanonutrients influence the growth and physiological processes of cultivable fish can boost fish production efficiency with less management, advancing aquaculture toward global food security. In this study, a 60-day feeding trial was conducted to determine the effects of a nanonutrient complex (NNC) on the growth performances and physiology of Asian catfish, . Nanoparticles (NPs; Zn, Cu, and Fe) were synthesized from their metallic salts using an established acoustic method and characterized via scanning electron microscopy. The NNC was formulated by mixing zinc NPs (Zn-NPs), copper NPs (Cu-NPs), and iron NPs (Fe-NPs) in a 40:20:40 ratio. In the experiment, a basal diet was supplemented with NNC at concentrations of 0.0 (control), 10, 20, 30, 40, and 50 mg/kg and fed to for 60 days to evaluate growth and physiological parameters (hematology, lipid, and enzyme profiles). The findings indicated that fish administered 30 mg/kg NNC achieved the highest final weight (FW; 25.73 ± 0.41 g), weight gain (WG; 386.67% ± 10.12%), average daily gain (ADG; 0.34 ± 0.01 g/fish/day), specific growth rate (SGR; 2.64 ± 0.03%/day), and enhanced feed conversion ratio (FCR; 1.24 ± 0.03), with statistically significant differences ( < 0.05) relative to the control group. Regression study determined the ideal NNC dosage range to be 30.19-30.26 mg/kg for growth and FCR results. Muscle composition enhanced at this level, with protein and fat content attaining 18.6% ± 0.3% and 6.8% ± 0.2%, respectively. Hematological indices reached their optimum at 30 mg/kg NNC, with red blood cell (RBC) count (3.62 ± 0.21 × 10/mm), hemoglobin (Hb; 9.83 ± 0.12 g/dL), and hematocrit (Hct; 26.31% ± 0.52%) greatly surpassing those of other treatments. Serum biochemical analysis indicated elevated total protein (4.79 ± 0.05 g/dL), albumin (1.55 ± 0.04 g/dL), and globulin (3.24 ± 0.02 g/dL) at 30 mg/kg, while undesirable elevations in stress markers-cholesterol (224.84 ± 1.10 mg/dL), alanine aminotransferase (ALT; 33.75 ± 0.39 U/L), and aspartate aminotransferase (AST; 40.29 ± 1.17 U/L)-were noted at 50 mg/kg, suggesting potential toxicity at increased dosages. Bioaccumulation of trace elements was most pronounced in the liver, with copper concentrations 11.15% greater than zinc and 1.09% higher than iron, while overall accumulation in the liver surpassed that in muscle and serum by 21.84% and 57.84%, respectively.
了解纳米营养素如何影响可养殖鱼类的生长和生理过程,可以在减少管理的情况下提高鱼类生产效率,推动水产养殖朝着全球粮食安全的方向发展。在本研究中,进行了为期60天的投喂试验,以确定纳米营养素复合物(NNC)对亚洲鲶鱼生长性能和生理的影响。纳米颗粒(NPs;锌、铜和铁)通过既定的声学方法从其金属盐中合成,并通过扫描电子显微镜进行表征。NNC是通过将锌纳米颗粒(Zn-NPs)、铜纳米颗粒(Cu-NPs)和铁纳米颗粒(Fe-NPs)按40:20:40的比例混合配制而成。在实验中,基础饲料添加浓度为0.0(对照)、10、20、30、40和50 mg/kg的NNC,并投喂给亚洲鲶鱼60天,以评估生长和生理参数(血液学、脂质和酶谱)。研究结果表明,投喂30 mg/kg NNC的鱼最终体重(FW;25.73±0.41 g)、体重增加(WG;386.67%±10.12%)、平均日增重(ADG;0.34±0.01 g/鱼/天)、特定生长率(SGR;2.64±0.03%/天)最高,饲料转化率(FCR;1.24±0.03)提高,与对照组相比有统计学显著差异(P<0.05)。回归研究确定生长和FCR结果的理想NNC剂量范围为30.19 - 30.26 mg/kg。在此水平下肌肉组成得到改善,蛋白质和脂肪含量分别达到18.6%±0.3%和6.8%±0.2%。血液学指标在30 mg/kg NNC时达到最佳,红细胞(RBC)计数(3.62±0.21×10/mm)、血红蛋白(Hb;9.83±0.12 g/dL)和血细胞比容(Hct;26.31%±0.52%)大大超过其他处理组。血清生化分析表明,30 mg/kg时总蛋白(4.79±0.05 g/dL)、白蛋白(1.55±0.04 g/dL)和球蛋白(3.24±0.02 g/dL)升高,而在50 mg/kg时应激标志物胆固醇(224.84±1.10 mg/dL)、丙氨酸氨基转移酶(ALT;33.75±0.39 U/L)和天冬氨酸氨基转移酶(AST;40.29±1.17 U/L)出现不良升高,表明剂量增加时有潜在毒性。微量元素的生物积累在肝脏中最为明显,铜浓度比锌高11.15%,比铁高1.09%,而肝脏中的总体积累分别比肌肉和血清高21.84%和57.84%。