Wang Meiyao, Zhou Jun, Ge Jiachun, Xu Gangchun, Tang Yongkai
Key Laboratory of Freshwater Fisheries and Germplasm Resources Utilization, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences, Ministry of Agriculture and Rural Affairs, Wuxi 214081, China.
Wuxi Fisheries College, Nanjing Agricultural University, Wuxi 214081, China.
Biology (Basel). 2025 Jan 16;14(1):84. doi: 10.3390/biology14010084.
(1) Background: Global climate change is intensifying, and the vigorous development and utilization of saline-alkali land is of great significance. As an important economic aquatic species in the context of saline-alkali aquaculture, it is highly significant to explore the regulatory mechanisms of under alkaline conditions. In particular, the brain (cerebral ganglion for crustaceans) serves as a vital regulatory organ in response to environmental stress; (2) Methods: In this study, a comparative transcriptome approach was employed to investigate the key regulatory genes and molecular regulatory mechanisms in the cerebral ganglion of under alkaline stress. (3) Results: The results demonstrated that the cerebral ganglion of exhibited a positive response to acute alkaline stress. Pathways associated with signal transduction and substance transportation, such as "phagosome" and "regulation of actin cytoskeleton", along with regulatory genes involved in antioxidation, were upregulated synergistically to maintain homeostasis under alkaline stress. Furthermore, it was discovered for the first time that plays a positive regulatory role in the adaptation of to alkalinity. (4) Conclusions: The present study elucidates the molecular regulatory pattern of the cerebral ganglion in under acute alkaline stress as well as revealing a novel role of in facilitating adaptation to alkalinity in , providing valuable theoretical insights into the molecular regulatory mechanisms underlying the responses of cerebral ganglia to saline-alkali environments. These findings also offer a theoretical reference for promoting the sustainable development of the breeding industry under saline-alkali conditions.
(1) 背景:全球气候变化日益加剧,盐碱地的大力开发利用具有重要意义。作为盐碱水养殖背景下的重要经济水产养殖品种,探究其在碱性条件下的调控机制具有重要意义。特别是,脑(甲壳类动物为脑神经节)作为应对环境应激的重要调控器官;(2) 方法:本研究采用比较转录组学方法,研究碱性应激下[具体物种名称]脑神经节中的关键调控基因和分子调控机制。(3) 结果:结果表明,[具体物种名称]的脑神经节对急性碱性应激表现出积极反应。与信号转导和物质运输相关的通路,如“吞噬体”和“肌动蛋白细胞骨架调控”,以及参与抗氧化的调控基因,在碱性应激下协同上调以维持体内稳态。此外,首次发现[具体基因名称]在[具体物种名称]适应碱度方面发挥正向调控作用。(4) 结论:本研究阐明了[具体物种名称]在急性碱性应激下脑神经节的分子调控模式,并揭示了[具体基因名称]在促进[具体物种名称]适应碱度方面的新作用,为脑神经节对盐碱环境反应的分子调控机制提供了有价值的理论见解。这些发现也为促进盐碱条件下[具体物种名称]养殖业的可持续发展提供了理论参考。