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盐度对欧洲海鲈鳃基因组范围 DNA 甲基化动态的作用。

The role of salinity on genome-wide DNA methylation dynamics in European sea bass gills.

机构信息

MARBEC, Univ. Montpellier, CNRS, Ifremer, IRD, Montpellier, France.

IHPE, Université Montpellier, CNRS, Ifremer, University of Perpignan Via Domitia, Perpignan, France.

出版信息

Mol Ecol. 2023 Sep;32(18):5089-5109. doi: 10.1111/mec.17089. Epub 2023 Aug 1.

Abstract

Epigenetic modifications, like DNA methylation, generate phenotypic diversity in fish and ultimately lead to adaptive evolutionary processes. Euryhaline marine species that migrate between salinity-contrasted habitats have received little attention regarding the role of salinity on whole-genome DNA methylation. Investigation of salinity-induced DNA methylation in fish will help to better understand the potential role of this process in salinity acclimation. Using whole-genome bisulfite sequencing, we compared DNA methylation patterns in European sea bass (Dicentrarchus labrax) juveniles in seawater and after freshwater transfer. We targeted the gill as a crucial organ involved in plastic responses to environmental changes. To investigate the function of DNA methylation in gills, we performed RNAseq and assessed DNA methylome-transcriptome correlations. We showed a negative correlation between gene expression levels and DNA methylation levels in promoters, first introns and first exons. A significant effect of salinity on DNA methylation dynamics with an overall DNA hypomethylation in freshwater-transferred fish compared to seawater controls was demonstrated. This suggests a role of DNA methylation changes in salinity acclimation. Genes involved in key functions as metabolism, ion transport and transepithelial permeability (junctional complexes) were differentially methylated and expressed between salinity conditions. Expression of genes involved in mitochondrial metabolism (tricarboxylic acid cycle) was increased, whereas the expression of DNA methyltransferases 3a was repressed. This study reveals novel links between DNA methylation, mainly in promoters and first exons/introns, and gene expression patterns following salinity change.

摘要

表观遗传修饰,如 DNA 甲基化,在鱼类中产生表型多样性,并最终导致适应性进化过程。在盐度对比明显的栖息地之间迁徙的广盐性海洋物种,其整个基因组 DNA 甲基化在盐度方面的作用尚未得到充分关注。研究鱼类中盐度诱导的 DNA 甲基化将有助于更好地理解这一过程在盐度适应中的潜在作用。我们使用全基因组亚硫酸氢盐测序,比较了欧洲鲈鱼(Dicentrarchus labrax)幼鱼在海水中和淡水转移后的 DNA 甲基化模式。我们将鳃作为一个关键器官,研究其对环境变化的可塑性反应。为了研究 DNA 甲基化在鳃中的功能,我们进行了 RNAseq 并评估了 DNA 甲基组-转录组相关性。我们发现启动子、第一内含子和第一外显子中基因表达水平与 DNA 甲基化水平呈负相关。与海水对照组相比,淡水转移鱼中的 DNA 甲基化动态存在显著的盐度效应,表现为整体 DNA 低甲基化。这表明 DNA 甲基化变化在盐度适应中起作用。涉及代谢、离子转运和跨上皮通透性(连接复合体)等关键功能的基因在盐度条件之间存在差异甲基化和表达。参与线粒体代谢(三羧酸循环)的基因表达增加,而 DNA 甲基转移酶 3a 的表达受到抑制。本研究揭示了 DNA 甲基化(主要在启动子和第一外显子/内含子)与盐度变化后基因表达模式之间的新联系。

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