Effects of low salinity stress on osmoregulation and gill transcriptome in different populations of mud crab Scylla paramamosain

盐度 渗透调节 生物 渗透压 人口 海湾 副热带青蟹 河口 生态学 植物 海洋学 生物化学 基因 地质学 社会学 人口学
作者
Wenbin Xu,Yan‐Mei Zhang,Bang-Ze Li,Chen-Yang Lin,David D. Y. Chen,Yuan-Xin Cheng,Xiao-Ling Guo,Wei-Ren Dong,Miao-An Shu
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:867: 161522-161522 被引量:12
标识
DOI:10.1016/j.scitotenv.2023.161522
摘要

Animals living in estuaries suffer from rapid and continuous salinity fluctuations, while the global warming and extreme precipitation aggravate this situation. Osmoregulation is important for estuarine animals adapt to salinity fluctuations. The present study investigated the effects of low salinity stress on osmoregulation and gill transcriptome in two populations of mud crab from Hangzhou Bay and Zhangzhou Bay of China, respectively. Crabs were transferred from salinity 25 ppt to 5 ppt for 96 h. Edematous swelling in gill filaments was caused by low salinity stress and was more serious in Zhangzhou Bay population. Gill Na+/K+-ATPase activity increased (p < 0.01) in both populations under the low salinity stress and was significantly higher (p < 0.01) in Hangzhou Bay population than in Zhangzhou Bay population. According to transcriptome analysis, there were 191 genes differentially expressed under the low salinity stress in gill tissue of both populations. Several ion transport and energy metabolism related pathways, as well as the arginine and proline metabolism pathway, were enriched by these genes. On the other hand, 272 genes were identified to differentially express between two populations under the low salinity stress, but not under the control salinity. The enrichment analysis showed that these genes were mainly related to ion transport, energy metabolism, osmolytes metabolism and methyltransferase activity. In conclusion, the present study suggested that mud crab exploited a combination of extracellular anisosmotic regulation and intracellular isosmotic regulation for osmoregulation under the low salinity stress. Hangzhou Bay population showed a greater osmoregulatory capacity, which is probably due to the enhanced ion transport, energy supply, and osmolytes regulation. Meanwhile, epigenetic modification might also contribute to an inherent osmoregulation ability for Hangzhou Bay population to response to salinity fluctuation rapidly.

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