A TMT-Based Proteomic Analysis of Osmoregulation in the Gills of Oreochromis mossambicus Exposed to Three Osmotic Stresses.

IF 4.9 2区 生物学 International Journal of Molecular Sciences Pub Date : 2025-03-20 DOI:10.3390/ijms26062791
Huanhuan Su, Dongmei Ma, Jiajia Fan, Zaixuan Zhong, Yuanyuan Tian, Huaping Zhu
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Abstract

Salinity and alkalinity are critical environmental factors that affect fish physiology and ability to survive. Oreochromis mossambicus is a euryhaline species that can endure a wide range of salinities and has the potential to serve as a valuable model animal for environmental science. In order to detect the histomorphological changes, antioxidant enzymes, and proteomic responses of O. mossambicus to different osmotic stresses, O. mossambicus was subjected to salinity stress (25 g/L, S_S), alkalinity stress (4 g/L, A_S), saline-alkalinity stress (salinity: 25 g/L, alkalinity: 4 g/L, SA_S), and freshwater (the control group; C_S). The histomorphological and antioxidant enzyme results indicated that salinity, alkalinity, and saline-alkalinity stresses have different degrees of damage and effects on the gills and liver of O. mossambicus. Compared with the control, 83, 187, and 177 differentially expressed proteins (DEPs) were identified in the salinity, alkalinity, and saline-alkalinity stresses, respectively. The obtained DEPs can be summarized into four categories: ion transport channels or proteins, energy synthesis and metabolism, immunity, and apoptosis. The KEGG enrichment results indicated that DNA replication and repair were significantly enriched in the salinity stress group. Lysosomes and oxidative phosphorylation were considerably enriched in the alkalinity stress group. Comparatively, the three most important enriched pathways in the saline-alkalinity stress group were Parkinson's disease, Alzheimer's disease, and Huntington's disease. The findings of this investigation yield robust empirical evidence elucidating osmoregulatory mechanisms and adaptive biological responses in euryhaline teleost, thereby establishing a scientific foundation for the cultivation and genomic exploration of high-salinity-tolerant teleost species. This advancement facilitates the sustainable exploitation of saline-alkaline aquatic ecosystems while contributing to the optimization of piscicultural practices in hypersaline environments.

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基于tmt的三种渗透胁迫下的mossambicus鱼鳃渗透调节的蛋白质组学分析
盐度和碱度是影响鱼类生理和生存能力的关键环境因素。mossambicus是一种能承受大范围盐度的泛盐物种,具有作为环境科学有价值的模式动物的潜力。为了检测mosambicus在不同渗透胁迫下的组织形态学变化、抗氧化酶和蛋白质组学反应,分别对mosambicus进行了盐度胁迫(25 g/L, S_S)、碱度胁迫(4 g/L, A_S)、盐碱胁迫(盐度:25 g/L,碱度:4 g/L, SA_S)和淡水(对照组;C_S)。组织形态学和抗氧化酶结果表明,盐度、碱度和盐碱胁迫对青鳉鱼的鳃和肝脏有不同程度的损伤和影响。与对照相比,在盐度、碱性和盐碱胁迫下分别鉴定出83个、187个和177个差异表达蛋白(DEPs)。得到的dep可归纳为四类:离子转运通道或蛋白质、能量合成和代谢、免疫和凋亡。KEGG富集结果表明,盐胁迫组DNA复制和修复功能显著增强。碱度应激组溶酶体和氧化磷酸化显著富集。相比之下,盐碱应激组中三个最重要的富集通路是帕金森病、阿尔茨海默病和亨廷顿病。本研究结果提供了强有力的经验证据,阐明了广盐硬骨鱼的渗透调节机制和适应性生物反应,从而为高耐盐硬骨鱼物种的培育和基因组探索奠定了科学基础。这一进展促进了盐碱水生生态系统的可持续开发,同时有助于优化高盐环境下的渔业实践。
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期刊介绍: The International Journal of Molecular Sciences (ISSN 1422-0067) provides an advanced forum for chemistry, molecular physics (chemical physics and physical chemistry) and molecular biology. It publishes research articles, reviews, communications and short notes. Our aim is to encourage scientists to publish their theoretical and experimental results in as much detail as possible. Therefore, there is no restriction on the length of the papers or the number of electronics supplementary files. For articles with computational results, the full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material (including animated pictures, videos, interactive Excel sheets, software executables and others).
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