Multiple roles of DNA methylation in sea-ice bacterial communities and associated viruses

Georges Kanaan, Jody W Deming
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Abstract

Despite growing evidence for the role of DNA methylation in bacterial acclimation to environmental stress, this epigenetic mechanism remains unexplored in sea-ice microbial communities known to tolerate multiple stressors. This study presents a first analysis of DNA methylation patterns in bacterial communities and associated viruses across the vertical thickness of sea ice. Using a novel stepped-sackhole method, we collected sea-ice brines from distinct horizons of an Arctic ice floe, capturing microbial communities that had been exposed to different environmental conditions. Through Oxford Nanopore sequencing, we characterized methylation patterns in bacterial and associated viral DNA, analysing for methylation motifs and differences between ice horizons. We identified 22 unique bacterial methylation motifs and 27 viral motifs across three nucleotide methylation types (5mC, 6mA, and 4mC), with evidence of differential methylation between upper and lower ice. Analysis of metagenome-assembled genomes revealed the regulatory potential of methylation in both ice-adapted (Psychromonas and Polaribacter) and non-adapted bacteria (Pelagibacter); e.g., in Pelagibacter, differential methylation of the GANTC motif between upper and lower ice affected genes involved in core cellular processes. Viral methylation patterns showed evidence of recent infection. We also identified orphan methyltransferases in sea-ice phages, suggesting a mechanism for bypassing host restriction-modification systems and regulating host genes. Our findings reveal that DNA methylation serves functions in sea ice beyond traditional restriction-modification systems that protect against foreign DNA, opening new avenues for research on the role of epigenetic mechanisms not only in acclimation to the cryosphere but also more generally in microbial ecology and evolution.
DNA甲基化在海冰细菌群落和相关病毒中的多重作用
尽管越来越多的证据表明DNA甲基化在细菌适应环境胁迫中的作用,但这种表观遗传机制在已知耐受多种应激源的海冰微生物群落中仍未被探索。这项研究首次分析了细菌群落和相关病毒在海冰垂直厚度上的DNA甲基化模式。我们使用一种新颖的阶梯袋洞方法,从北极浮冰的不同地平线上收集海冰盐水,捕捉暴露在不同环境条件下的微生物群落。通过牛津纳米孔测序,我们表征了细菌和相关病毒DNA的甲基化模式,分析了甲基化基序和冰层之间的差异。我们在三种核苷酸甲基化类型(5mC、6mA和4mC)中鉴定了22个独特的细菌甲基化基序和27个病毒甲基化基序,并证明了上下冰之间甲基化的差异。宏基因组组装基因组的分析揭示了甲基化在冰适应细菌(Psychromonas和Polaribacter)和非冰适应细菌(Pelagibacter)中的调节潜力;例如,在Pelagibacter中,上层冰和下层冰之间GANTC基序的差异甲基化影响了参与核心细胞过程的基因。病毒甲基化模式显示了最近感染的证据。我们还在海冰噬菌体中发现了孤儿甲基转移酶,这表明了一种绕过宿主限制性修饰系统并调节宿主基因的机制。我们的研究结果表明,DNA甲基化在海冰中的作用超越了传统的限制修饰系统,保护外来DNA,为研究表观遗传机制在适应冰冻圈以及更广泛的微生物生态和进化中的作用开辟了新的途径。
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