Cell death upon epigenetic genome methylation: a novel function of methyl-specific deoxyribonucleases

Eri Fukuda1, Katarzyna H Kaminska, Janusz M Bujnicki

  • 1Laboratory of Social Genome Sciences, Department of Medical Genome Sciences, University of Tokyo, 4-6-1 Shirokanedai, Minato-ku, Tokyo, 108-8639, Japan. efukuda@ims.u-tokyo.ac.jp

Genome Biology
|November 26, 2008
PubMed
Abstract

Insights

Escherichia coli McrBC enzyme targets and cleaves methylated DNA, acting as a defense system that competes with genome methylation. This host-killing mechanism prevents the spread of foreign DNA and potentially mobile genetic elements.

Area of Science:

  • Microbiology
  • Epigenetics
  • Molecular Biology

Background:

  • Epigenetic methylation alterations impact gene expression.
  • Prokaryotic DNA methyltransferase genes can transfer between genomes, posing a threat.
  • Escherichia coli possesses McrBC, a methyl-specific deoxyribonuclease that degrades methylated DNA.

Purpose of the Study:

  • To investigate if McrBC competes with genome methylation systems via host killing through chromosome cleavage.
  • To understand the evolutionary and genomic characteristics of McrBC homologs.

Main Methods:

  • Plasmid establishment assays with a PvuII methyltransferase gene.
  • Phage-mediated transfer experiments to induce McrBC activity.
  • Induction of McrBC expression to observe cellular effects.
  • Evolutionary and genomic analyses of McrBC homologs.

Main Results:

  • McrBC inhibited plasmid establishment by cleaving methylated chromosomes.
  • Phage-mediated transfer and McrBC induction led to chromosome cleavage, degradation, and cell death.
  • RecA/RecBCD functions and SOS response modulated lethality.
  • McrBC homologs are widespread in Prokaryota, show horizontal transfer, and resemble selfish mobile elements like restriction-modification systems.

Conclusions:

  • McrBC functions as a defense system against genome methylation by inducing host cell death.
  • McrBCs likely evolved as mobile elements competing with methylation systems.
  • This study reports the first defense system against epigenetic systems mediated by cell death.

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