首页> 美国卫生研究院文献>Wiley-Blackwell Online Open >Fine-scale population epigenetic structure in relation to gastrointestinal parasite load in red grouse (Lagopus lagopus scotica)
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Fine-scale population epigenetic structure in relation to gastrointestinal parasite load in red grouse (Lagopus lagopus scotica)

机译:与红松鸡(Lagopus lagopus scotica)胃肠道寄生虫负荷有关的小规模种群表观遗传结构

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摘要

Epigenetic modification of cytosine methylation states can be elicited by environmental stresses and may be a key process affecting phenotypic plasticity and adaptation. Parasites are potent stressors with profound physiological and ecological effects on their host, but there is little understanding in how parasites may influence host methylation states. Here, we estimate epigenetic diversity and differentiation among 21 populations of red grouse (Lagopus lagopus scotica) in north-east Scotland and test for association of gastrointestinal parasite load (caecal nematode Trichostrongylus tenuis) with hepatic genome-wide and locus-specific methylation states. Following methylation-sensitive AFLP (MSAP), 129 bands, representing 73 methylation-susceptible and 56 nonmethylated epiloci, were scored across 234 individuals. The populations differed significantly in genome-wide methylation levels and were also significantly epigenetically (FSC = 0.0227; P < 0.001) and genetically (FSC = 0.0058; P < 0.001) differentiated. Parasite load was not associated with either genome-wide methylation levels or epigenetic differentiation. Instead, we found eight disproportionately differentiated epilocus-specific methylation states (FST outliers) using bayescan software and significant positive and negative association of 35 methylation states with parasite load from bespoke generalized estimating equations (GEE), simple logistic regression (sam) and Bayesian environmental analysis (bayenv2). Following Sanger sequencing, genome mapping and geneontology (go) annotation, some of these epiloci were linked to genes involved in regulation of cell cycle, signalling, metabolism, immune system and notably rRNA methylation, histone acetylation and small RNAs. These findings demonstrate an epigenetic signature of parasite load in populations of a wild bird and suggest intriguing physiological effects of parasite-associated cytosine methylation.
机译:胞嘧啶甲基化状态的表观遗传修饰可以由环境胁迫引起,并且可能是影响表型可塑性和适应性的关键过程。寄生虫是强大的应激源,会对宿主产生深远的生理和生态影响,但对寄生虫如何影响宿主甲基化状态知之甚少。在这里,我们估计了苏格兰东北部21个红色松鸡(Lagopus lagopus scotica)种群之间的表观遗传多样性和分化,并测试了胃肠道寄生虫负荷(盲肠线虫Trichostrongylus tenuis)与肝脏全基因组和特定基因位甲基化状态的关联。甲基化敏感性AFLP(MSAP)之后,在234个个体中计分了129条谱带,分别代表了73个甲基化易感性和56个非甲基化的表位。群体的全基因组甲基化水平差异显着,表观遗传(FSC = 0.0227; P <0.001)和遗传(FSC = 0.0058; P <0.001)也有显着差异。寄生虫负荷与全基因组甲基化水平或表观遗传分化均无关。取而代之的是,我们使用贝叶斯软件发现了八个不成比例地分化的上位点特异性甲基化状态(FST异常值),并通过定制的广义估计方程(GEE),简单的逻辑回归(sam)和贝叶斯环境,将35个甲基化状态与寄生虫负载显着正相关和负相关分析(bayenv2)。在进行了Sanger测序,基因组作图和基因组学注释后,其中一些Epiloci与涉及细胞周期,信号传导,代谢,免疫系统调节的基因相关,尤其是rRNA甲基化,组蛋白乙酰化和小RNA。这些发现证明了野生鸟类种群中寄生虫负载的表观遗传学特征,并暗示了寄生虫相关胞嘧啶甲基化的有趣生理作用。

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