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探索下一代测序时代的细菌表观基因组学:新兴前沿的新方法。

Exploring bacterial epigenomics in the next-generation sequencing era: a new approach for an emerging frontier.

机构信息

Department of Population Health and Reproduction, School of Veterinary Medicine, University of California, Davis, CA, USA; Universidad de Tarapacá, Avenida General Velásquez N°1775, Arica, Chile.

Department of Population Health and Reproduction, School of Veterinary Medicine, University of California, Davis, CA, USA; Universidad de Tarapacá, Avenida General Velásquez N°1775, Arica, Chile; Facultad de Ciencias, Universidad de Tarapacá, Arica, Chile.

出版信息

Trends Microbiol. 2014 May;22(5):292-300. doi: 10.1016/j.tim.2014.03.005. Epub 2014 Apr 8.

Abstract

Epigenetics has an important role for the success of foodborne pathogen persistence in diverse host niches. Substantial challenges exist in determining DNA methylation to situation-specific phenotypic traits. DNA modification, mediated by restriction-modification systems, functions as an immune response against antagonistic external DNA, and bacteriophage-acquired methyltransferases (MTase) and orphan MTases - those lacking the cognate restriction endonuclease - facilitate evolution of new phenotypes via gene expression modulation via DNA and RNA modifications, including methylation and phosphorothioation. Recent establishment of large-scale genome sequencing projects will result in a significant increase in genome availability that will lead to new demands for data analysis including new predictive bioinformatics approaches that can be verified with traditional scientific rigor. Sequencing technologies that detect modification coupled with mass spectrometry to discover new adducts is a powerful tactic to study bacterial epigenetics, which is poised to make novel and far-reaching discoveries that link biological significance and the bacterial epigenome.

摘要

表观遗传学在食源性病原体在不同宿主小生境中持续存在方面起着重要作用。确定 DNA 甲基化与特定表型特征之间的关系存在很大的挑战。通过限制修饰系统介导的 DNA 修饰,作为一种针对拮抗外源 DNA 的免疫反应,噬菌体获得的甲基转移酶(MTase)和孤儿 MTase(缺乏同源限制内切酶)通过 DNA 和 RNA 修饰(包括甲基化和硫代磷酸化)来调节基因表达,从而促进新表型的进化。大规模基因组测序项目的最新建立将导致基因组可用性的显著增加,这将导致对数据分析的新需求,包括可以通过传统科学严谨性验证的新预测生物信息学方法。检测修饰与质谱相结合以发现新加合物的测序技术是研究细菌表观遗传学的有力策略,这有望做出新颖而深远的发现,将生物学意义与细菌表观基因组联系起来。

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