转录组分析为棕褐色乌贼对高盐度胁迫的反应提供了初步的见解

Zan Li , Xiaokai Bao , Xiumei Liu , Yongjie Wang , Xueyu Zhu , Yuwei Zhang , Zhenwei Wang , Sergei Maslennikov , Michael Whiteside , Weijun Wang , Xiaohui Xu , Bin Li , Qihao Luo , Yan Li , Shuhai Wang , Bin Hu , Jianmin Yang
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摘要

棕Sepia esculenta是中国具有重要经济价值的头足类动物。全球气候变化增加了海洋盐度水平的波动,这是S. esculenta种群的一个主要问题,因为盐度的极端变化可能对海洋生物致命。在高盐度胁迫下,研究了沙蚕幼虫的抗逆性机制。采用高通量转录组测序技术检测样品中转录水平的变化。共鉴定出1126个显著差异表达基因。功能富集分析结果表明,高盐度激活了褐藻幼虫的凋亡和几种先天免疫相关途径。通过蛋白-蛋白互作网络分析,确定PARP1、PIK3CB和FLNA为参与幼虫高盐抗性的枢纽基因。采用实时荧光定量PCR技术分析基因表达,验证转录组测序结果的准确性。细胞凋亡过程可以限制高盐诱导的组织损伤,而炎症反应的激活可以维持细胞稳态。因此,我们推测高盐度可诱导褐藻幼虫的先天免疫和细胞凋亡,调节其生长发育。这些发现还表明,必须在人工水产养殖系统中防止海水盐度增加造成的水产养殖损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcriptome analysis provides preliminary insights into the response of Sepia esculenta to high salinity stress
Sepia esculenta is an economically important cephalopod species contributing to aquaculture in China. Global climate changes have increased fluctuations in the ocean salinity level, which is a major problem for S. esculenta populations because extreme changes in salinity may be fatal to marine life. In this study, S. esculenta larvae were subjected to high salinity stress to investigate their stress resistance mechanisms. High-throughput transcriptome sequencing technology was used to detect transcript-level changes in samples. A total of 1126 significant differentially expressed genes were identified. The results of functional enrichment analyses showed that high salinity activated apoptosis and several innate immunity-related pathways in S. esculenta larvae. On the basis of a protein–protein interaction network analysis, PARP1, PIK3CB and FLNA were identified as hub genes involved in larval resistance to high salinity. Quantitative real-time PCR technology was used to analyze gene expression and verify the accuracy of the transcriptome sequencing results. The process of apoptosis can restrict high salinity-induced tissue damage, while the activation of an inflammatory response can maintain cellular homeostasis. Therefore, we speculate that high salinity induces innate immunity and apoptosis in S. esculenta larvae and modulates growth and development. These findings also suggest that aquaculture losses due to increased seawater salinity must be prevented in artificial aquaculture systems.
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