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Updated: Jun 27, 2026

Continuous Fluorescence-Based Endonuclease-Coupled DNA Methylation Assay to Screen for DNA Methyltransferase Inhibitors
Published on: August 5, 2022
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
Background:
Alteration in epigenetic methylation can affect gene expression and other processes. In Prokaryota, DNA methyltransferase genes frequently move between genomes and present a potential threat. A methyl-specific deoxyribonuclease, McrBC, of Escherichia coli cuts invading methylated DNAs. Here we examined whether McrBC competes with genome methylation systems through host killing by chromosome cleavage.
Results:
McrBC inhibited the establishment of a plasmid carrying a PvuII methyltransferase gene but lacking its recognition sites, likely through the lethal cleavage of chromosomes that became methylated. Indeed, its phage-mediated transfer caused McrBC-dependent chromosome cleavage. Its induction led to cell death accompanied by chromosome methylation, cleavage and degradation. RecA/RecBCD functions affect chromosome processing and, together with the SOS response, reduce lethality. Our evolutionary/genomic analyses of McrBC homologs revealed: a wide distribution in Prokaryota; frequent distant horizontal transfer and linkage with mobility-related genes; and diversification in the DNA binding domain. In these features, McrBCs resemble type II restriction-modification systems, which behave as selfish mobile elements, maintaining their frequency by host killing. McrBCs are frequently found linked with a methyltransferase homolog, which suggests a functional association.
Conclusions:
Our experiments indicate McrBC can respond to genome methylation systems by host killing. Combined with our evolutionary/genomic analyses, they support our hypothesis that McrBCs have evolved as mobile elements competing with specific genome methylation systems through host killing. To our knowledge, this represents the first report of a defense system against epigenetic systems through cell death.
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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