

FOLLOWUS
1.College of Fisheries and Life Science, Shanghai Ocean University, Ministry of Education, Shanghai 201306, China
2.Laboratory for Marine Biology and Biotechnology, Qingdao National Laboratory for Marine Science and Technology, Qingdao 266071, China
3.Yellow Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences; Shandong Key Laboratory of Marine Fisheries Biotechnology and Genetic Breeding; Qingdao Key Laboratory for Marine Fish Breeding and Biotechnology, Qingdao 266071, China
4.Yantai Tianyuan Aquatic Limited Corporation, Yantai 264003, China
MA Aijun, maaj@ysfri.ac.cn
收稿:2019-03-08,
录用:2019-7-10,
网络首发:2019-07-22,
纸质出版:2020-02
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Transcriptomic analysis reveals putative osmoregulation mechanisms in the kidney of euryhaline turbot
Wenxiao CUI, Aijun MA, Zhihui HUANG, et al. Transcriptomic analysis reveals putative osmoregulation mechanisms in the kidney of euryhaline turbot
Transcriptomic analysis reveals putative osmoregulation mechanisms in the kidney of euryhaline turbot
Wenxiao CUI, Aijun MA, Zhihui HUANG, et al. Transcriptomic analysis reveals putative osmoregulation mechanisms in the kidney of euryhaline turbot
Turbot harbor a relatively remarkable ability to adapt to opposing osmotic challenges and are an excellent model species to study the physiological adaptations of flounder associated with osmoregulatory plasticity. The kidney transcriptome of turbot treated 24 h in water of hypo-salinity (salinity 5) and seawater (salinity 30) was sequenced and characterized. In silico analysis indicated that all unigenes had significant hits in seven databases. The functional annotation analysis of the transcriptome showed that the immune system and biological processes associated with digestion
absorption
and metabolism played an important role in the osmoregulation of turbot in response to hypo-salinity. Analysis of biological processes associated with inorganic channels and transporters indicated that mineral absorption and bile secretion contributed to iono-osmoregulation resulting in cell volume regulation and cell phenotypic plasticity. Moreover
we analyzed and predicted the mechanisms of canonical signaling transduction. Biological processes involved in renin secretion
ECM-receptor interaction
adherens junction
and focal adhesion played an important role in the plasticity phenotype in hypo-stress
while the signal transduction network composed of the MAPK signaling pathway and PI3K-Akt signaling pathway with GABAergic synapse
worked in hypoosmoregulation signal transduction in the turbot. In addition
analysis of the tissue specificity of targeted gene expression using qPCR during salinity stress was carried out. The results showed that the kidney
gill
and spleen were vital regulating organs of osmotic pressure
and the osmoregulation pattern of euryhaline fish differed among species.
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