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急性缺氧和高碳酸血症条件下热应激绿鲍(Haliotis fulgens:腹足纲)的从头转录组组装及基因表达谱分析

De novo transcriptome assembly and gene expression profile of thermally challenged green abalone (Haliotis fulgens: Gastropoda) under acute hypoxia and hypercapnia.

作者信息

Tripp-Valdez Miguel A, Harms Lars, Pörtner Hans O, Sicard M Teresa, Lucassen Magnus

机构信息

Integrative Ecophysiology, Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research, Am Handelshafen12, D-27570 Bremerhaven, Germany.

Integrative Ecophysiology, Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research, Am Handelshafen12, D-27570 Bremerhaven, Germany.

出版信息

Mar Genomics. 2019 Jun;45:48-56. doi: 10.1016/j.margen.2019.01.007. Epub 2019 Feb 1.

DOI:10.1016/j.margen.2019.01.007
PMID:30713083
Abstract

Transcriptional regulation constitutes a rapid response of marine organisms facing stressful environmental conditions, such as the concomitant exposure to warming, ocean acidification and hypoxia under climate change. In previous studies, we investigated whole-organism physiological patterns and cellular metabolism in gill and muscle of the marine gastropod Haliotis fulgens in response to increasing temperature (18 °C to 32 °C at +3 °C per day) under hypoxia (50% air saturation), hypercapnia (1000 μatm pCO) and both factors combined. Here, we report investigations of the molecular responses of H. fulgens to temperature and identify mechanisms concomitantly affected by hypoxia and hypercapnia. A de novo transcriptome assembly with subsequent quantitative PCR and correlation network analysis of genes involved in the molecular response were used to unravel the correlations between gene expression patterns under the different experimental conditions. The correlation networks identified a shift from the expression of genes involved in energy metabolism (down-regulated) to the up-regulation of Hsp70 during warming under all experimental conditions in gill and muscle, indicating a strong up-regulation of damage prevention and repair systems at sustained cellular energy production. However, a higher capacity for anaerobic succinate production was evicted in gill, matching with observations from our previous studies indicating succinate accumulation in gill but not in muscle. Additionally, warming under hypoxia and hypercapnia kept mRNA levels of citrate synthase in both tissues unchanged following a similar pattern as muscle enzyme capacity from a previous study, suggesting an emphasis on maintaining rather than down-regulating mitochondrial activity.

摘要

转录调控是海洋生物面对压力环境条件时的一种快速反应,例如在气候变化下同时暴露于变暖、海洋酸化和缺氧环境。在之前的研究中,我们研究了海洋腹足动物皱纹盘鲍在缺氧(空气饱和度50%)、高碳酸血症(1000 μatm pCO₂)以及二者联合作用下,对温度升高(从18℃以每天3℃的速度升至32℃)的全生物体生理模式和鳃与肌肉中的细胞代谢。在此,我们报告了皱纹盘鲍对温度的分子反应研究,并确定了同时受缺氧和高碳酸血症影响的机制。利用从头转录组组装,随后对参与分子反应的基因进行定量PCR和相关网络分析,以揭示不同实验条件下基因表达模式之间的相关性。相关网络表明,在鳃和肌肉的所有实验条件下,随着温度升高,参与能量代谢的基因表达(下调)向Hsp70的上调转变,这表明在持续的细胞能量产生过程中,损伤预防和修复系统强烈上调。然而,鳃中无氧琥珀酸产生能力更高,这与我们之前的研究观察结果相符,即琥珀酸在鳃中积累而不在肌肉中积累。此外,在缺氧和高碳酸血症条件下升温,两种组织中柠檬酸合酶的mRNA水平保持不变,其模式与之前一项研究中肌肉酶能力的模式相似,这表明更强调维持而非下调线粒体活性。

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