Zhou Bingzheng, Qi Delin, Liu Sijia, Qi Hongfang, Wang Yang, Zhao Kai, Tian Fei
Key Laboratory of Adaptation and Evolution of Plateau Biota, Qinghai Provincial Key Laboratory of Animal Ecological Genomics, Northwest Institute of Plateau Biology, Chinese Academy of Sciences, Xining 810008, China; University of Chinese Academy of Sciences, Beijing 100049, China.
State Key Laboratory of Plateau Ecology and Agriculture, College of Eco-Environmental Engineering, Qinghai University, Xining 810008, China.
Comp Biochem Physiol Part D Genomics Proteomics. 2022 Jun;42:100982. doi: 10.1016/j.cbd.2022.100982. Epub 2022 Mar 7.
Gymnocypris przewalskii is a native cyprinid fish that dwells in the Lake Qinghai with salinity of 12-13‰. It migrates annually to the freshwater rivers for spawning, experiencing the significant changes in salinity. In the present study, we performed the physiological, morphological and transcriptomic analyses to understand the osmoregulation in G. przewalskii. The physiological assay showed that the osmotic pressure of G. przewalskii was almost isosmotic to the brackish lake water. The low salinity reduced its ionic concentrations and osmotic pressure. The plasticity of gill microstructure was linked to the salinity variations, including the presence of mucus and intact tight junctions in brackish water and the development of the mitochondria-rich cells and the loosened tight junctions in freshwater. RNA-seq analysis identified 1926 differentially expressed genes, including 710 and 1216 down- and up-regulated genes in freshwater, which were enriched in ion transport, cell-cell adhesion, and mucus secretion. Genes in ion uptake were activated in low salinity, and mucus pathways and tight junction showed the higher transcription in brackish water. The isosmoticity between the body fluid and the environment suggested G. przewalskii was in the metabolic-saving condition in the brackish water. The decreased salinity disrupted this balance, which activated the ion uptake in freshwater to maintain osmotic homeostasis. The gill remodeling was involved in this process through the development of the mitochondria-rich cells to enhance ion uptake. The current finding provided insights into the potential mechanisms of G. przewalskii to cope with salinity alteration.
普氏裸鲤是一种原产于青海湖的鲤科鱼类,青海湖的盐度为12 - 13‰。它每年洄游到淡水河流中产卵,经历盐度的显著变化。在本研究中,我们进行了生理、形态和转录组分析,以了解普氏裸鲤的渗透压调节机制。生理分析表明,普氏裸鲤的渗透压与半咸水湖水几乎等渗。低盐度降低了其离子浓度和渗透压。鳃微观结构的可塑性与盐度变化有关,包括在半咸水中存在黏液和完整的紧密连接,以及在淡水中富含线粒体的细胞的发育和紧密连接的松弛。RNA测序分析鉴定出1926个差异表达基因,其中包括在淡水中710个下调基因和1216个上调基因,这些基因在离子转运、细胞间黏附及黏液分泌方面富集。离子摄取相关基因在低盐度下被激活,黏液途径和紧密连接在半咸水中表现出更高的转录水平。体液与环境之间的等渗性表明普氏裸鲤在半咸水中处于节省代谢的状态。盐度降低破坏了这种平衡,从而激活了淡水中的离子摄取以维持渗透稳态。鳃重塑通过富含线粒体的细胞的发育参与这一过程,以增强离子摄取。目前的研究结果为普氏裸鲤应对盐度变化的潜在机制提供了见解。