揭示鱼类基因调控机制:深入了解多重应激反应和通过纳米铁颗粒缓解应激反应

Neeraj Kumar, S. T. Thorat, Meghana Ajit Gunaware, Paritosh Kumar, Kotha Sammi Reddy
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引用次数: 0

摘要

最近的全球变暖趋势对全世界的生态系统构成了重大威胁。全球气候变化也影响了水生生态系统的污染水平,进而影响人类健康。为了解决这些问题,我们进行了一项实验,研究铁纳米粒子(Fe-NPs)对砷和氨毒性以及高温胁迫(As+NH3+T)的缓解作用。Fe-NPs是利用鱼类废弃物生物合成的,并以10、15和20 mg kg-1日粮添加到饲料配方中。共设计了 12 种处理,每种处理一式三份,采用完全随机设计,涉及 540 尾鱼。15 毫克/千克饲料中的 Fe-NPs 能显著降低鱼类在多种压力下的皮质醇水平。HSP 70、DNA 损伤诱导蛋白(DDIP)和 DNA 损伤的基因表达在应激源(As+NH3+T)作用下上调,而在 Fe-NPs 作用下下调。对于受到 As+NH3+T 应激的鱼类,Fe-NPs(15 mg kg-1 日粮)会下调凋亡基因(Cas 3a 和 3b)和解毒基因(CYP 450)、金属硫蛋白(MT)和诱导型一氧化氮合酶(iNOS)。Fe-NPs上调了肿瘤坏死因子(TNFα)、免疫球蛋白(Ig)和白细胞介素(IL)等免疫相关基因,表明鱼类在As+NH3+T胁迫下免疫力增强。相反,在 As+NH3+T 胁迫下,Fe-NPs(15 毫克/千克-1 日粮)显著下调了鱼类的 Toll 样受体(TLR)表达。无论应激因素如何,膳食中添加 15 毫克/千克的 Fe-NPs 均可改善鱼类的免疫属性,如硝基氯化四氮唑、总蛋白、白蛋白、球蛋白、A:G 比值和髓过氧化物酶(MPO)。鱼体内的抗氧化基因(CAT、SOD 和 GPx)也因 Fe-NPs 而增强。与生长性能相关的基因,如生长激素调节因子(GHR1 和 GHRβ)、生长激素(GH)和胰岛素样生长因子(IGF 1X 和 IGF 2X)被上调,从而提高了鱼类在应激下的生长性能,而日粮中的 Fe-NPs 则下调了 SMT 和 MYST。日粮中添加 15 毫克/千克的 Fe-NPs 可改善各种生长性能指标。值得注意的是,Fe-NPs 还能提高砷的解毒能力,降低细菌感染后的累积死亡率。总之,本研究强调,通过调节鱼类的基因表达,日粮中的 Fe-NPs 可有效缓解砷和氨的毒性以及高温胁迫。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling gene regulation mechanisms in fish: insights into multistress responses and mitigation through iron nanoparticles
The recent trend of global warming poses a significant threat to ecosystems worldwide. This global climate change has also impacted the pollution levels in aquatic ecosystems, subsequently affecting human health. To address these issues, an experiment was conducted to investigate the mitigating effects of iron nanoparticles (Fe-NPs) on arsenic and ammonia toxicity as well as high temperature stress (As+NH3+T). Fe-NPs were biologically synthesized using fish waste and incorporated into feed formulations at 10, 15, and 20 mg kg-1 diet. A total of 12 treatments were designed in triplicate following a completely randomized design involving 540 fish. Fe-NPs at 15 mg kg-1 diet notably reduced the cortisol levels in fish exposed to multiple stressors. The gene expressions of HSP 70, DNA damage-inducible protein (DDIP), and DNA damage were upregulated by stressors (As+NH3+T) and downregulated by Fe-NPs. Apoptotic genes (Cas 3a and 3b) and detoxifying genes (CYP 450), metallothionein (MT), and inducible nitric oxide synthase (iNOS) were downregulated by Fe-NPs at 15 mg kg-1 diet in fish subjected to As+NH3+T stress. Immune-related genes such as tumor necrosis factor (TNFα), immunoglobulin (Ig), and interleukin (IL) were upregulated by Fe-NPs, indicating enhanced immunity in fish under As+NH3+T stress. Conversely, Toll-like receptor (TLR) expression was notably downregulated by Fe-NPs at 15 mg kg-1 diet in fish under As+NH3+T stress. Immunological attributes such as nitro blue tetrazolium chloride, total protein, albumin, globulin, A:G ratio, and myeloperoxidase (MPO) were improved by dietary Fe-NPs at 15 mg kg-1 diet in fish, regardless of stressors. The antioxidant genes (CAT, SOD, and GPx) were also strengthened by Fe-NPs in fish. Genes associated with growth performance, such as growth hormone regulator (GHR1 and GHRβ), growth hormone (GH), and insulin-like growth factor (IGF 1X and IGF 2X), were upregulated, enhancing fish growth under stress, while SMT and MYST were downregulated by Fe-NPs in the diet. Various growth performance indicators were improved by dietary Fe-NPs at 15 mg kg-1 diet. Notably, Fe-NPs also enhanced arsenic detoxification and reduced the cumulative mortality after a bacterial infection. In conclusion, this study highlights that dietary Fe-NPs can effectively mitigate arsenic and ammonia toxicity as well as high temperature stress by modulating gene expression in fish.
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