You Zhang, Shu Liu*, Wenhong Fan* and Wen-Xiong Wang,
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引用次数: 0
摘要
氢纳米泡(NBs)作为一种提高氢在水中溶解度和保留率的新策略而出现,因此在水生生态系统中具有潜在的应用前景。然而,它们的长期生物学效应和分子机制尚不清楚。本研究首次全面评价了铌氢水对铜胁迫下大水蚤(Daphnia magna, D. magna)生长和繁殖的慢性影响,揭示了关键分子途径和关键基因。长期暴露在氢NB水环境中,可以促进D. magna的生长和繁殖。机制上,转录组学分析表明,NB水通过上调羧肽酶A促进蛋白质水解,促进能量代谢,并通过上调几丁质酶促进脱毛。此外,NB水通过上调视黄醇脱氢酶来减弱视黄醇代谢,从而影响信号转导途径。在生殖过程中,NB水通过上调前列腺素合成酶和羰基还原酶显著促进前列腺素合成,改善能量稳态和生殖能力。这些结果不仅突出了促进NB氢水生长繁殖的分子基础,也为其在改善水生生态系统污染物胁迫方面的应用提供了基础。该研究为NB水的生态作用及其对水生生态系统的可持续管理和恢复的影响提供了新的见解。
Long-Term Exposure to Hydrogen Nanobubbles Enhances Daphnia magna Resilience Against Copper Stress: Sustainable Molecular Strategies for Growth, Reproduction, and Aquatic Health
Hydrogen nanobubbles (NBs) have emerged as a novel strategy to enhance hydrogen solubility and retention in water, thus offering potential applications to aquatic ecosystems. However, their long-term biological effects and molecular mechanisms are unclear. This study provides the first comprehensive evaluation of the chronic effects of hydrogen NB water on the growth and reproduction of Daphnia magna (D. magna) under copper stress, uncovering key molecular pathways and pivotal genes. Over prolonged exposure, hydrogen NB water promoted the growth and reproduction in D. magna. Mechanistically, transcriptomic analysis revealed that hydrogen NB water promotes protein hydrolysis by upregulating carboxypeptidase A, boosting energy metabolism, and facilitating molting through the upregulation of Chitinase. In addition, hydrogen NB water attenuated retinol metabolism by upregulating retinol dehydrogenase, thereby influencing signal transduction pathways. In reproduction, hydrogen NB water significantly enhances prostaglandin synthesis by upregulating prostaglandin synthase and carbonyl reductase, improving energy homeostasis and reproductive capacity. These results not only highlight the molecular basis for the enhanced growth and reproduction of hydrogen NB water and provide a foundation for their application in improving pollutant stress in aquatic ecosystems. This study provides novel insights into the ecological role of hydrogen NB water and its implications for the sustainable management and restoration of aquatic ecosystems.
期刊介绍:
ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment.
The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.