Differential adenine methylation analysis reveals increased variability in 6mA in the absence of methyl-directed mismatch repair

mBio. 2023 Oct 31;14(5):e0128923. doi: 10.1128/mbio.01289-23. Epub 2023 Oct 5.

Abstract

Methylation greatly influences the bacterial genome by guiding DNA repair and regulating pathogenic and stress-response phenotypes. But, the rate of epigenetic changes and their consequences on molecular phenotypes are underexplored. Through a detailed characterization of genome-wide adenine methylation in a commonly used laboratory strain of Escherichia coli, we reveal that mismatch repair deficient populations experience an increase in epimutations resulting in a genome-wide reduction of 6mA methylation in a manner consistent with genetic drift. Our findings highlight how methylation patterns evolve and the constraints on epigenetic evolution due to post-replicative DNA repair, contributing to a deeper understanding of bacterial genome evolution and how epimutations may introduce semi-permanent variation that can influence adaptation.

Keywords: Escherichia coli; N6-methyladenine; epigenetics; epimutation; experimental evolution; mutation.

MeSH terms

  • Adenine
  • DNA
  • DNA Methylation*
  • DNA Mismatch Repair*
  • Epigenesis, Genetic

Substances

  • Adenine
  • DNA