Epigenetic Gene Regulation in the Bacterial World
Top Cited Papers
- 1 September 2006
- journal article
- research article
- Published by American Society for Microbiology in Microbiology and Molecular Biology Reviews
- Vol. 70  (3) , 830-856
- https://doi.org/10.1128/mmbr.00016-06
Abstract
SUMMARY: Like many eukaryotes, bacteria make widespread use of postreplicative DNA methylation for the epigenetic control of DNA-protein interactions. Unlike eukaryotes, however, bacteria use DNA adenine methylation (rather than DNA cytosine methylation) as an epigenetic signal. DNA adenine methylation plays roles in the virulence of diverse pathogens of humans and livestock animals, including pathogenicEscherichia coli,Salmonella, Vibrio, Yersinia, Haemophilus, andBrucella. InAlphaproteobacteria, methylation of adenine at GANTC sites by the CcrM methylase regulates the cell cycle and couples gene transcription to DNA replication. InGammaproteobacteria, adenine methylation at GATC sites by the Dam methylase provides signals for DNA replication, chromosome segregation, mismatch repair, packaging of bacteriophage genomes, transposase activity, and regulation of gene expression. Transcriptional repression by Dam methylation appears to be more common than transcriptional activation. Certain promoters are active only during the hemimethylation interval that follows DNA replication; repression is restored when the newly synthesized DNA strand is methylated. In theE. coligenome, however, methylation of specific GATC sites can be blocked by cognate DNA binding proteins. Blockage of GATC methylation beyond cell division permits transmission of DNA methylation patterns to daughter cells and can give rise to distinct epigenetic states, each propagated by a positive feedback loop. Switching between alternative DNA methylation patterns can split clonal bacterial populations into epigenetic lineages in a manner reminiscent of eukaryotic cell differentiation. Inheritance of self-propagating DNA methylation patterns governs phase variation in theE. coli papoperon, theagn43gene, and other loci encoding virulence-related cell surface functions.Keywords
This publication has 317 references indexed in Scilit:
- Gene Silencing by MethylâCPGâBinding ProteinsPublished by Wiley ,2007
- Genomic DNA methylation: the mark and its mediatorsPublished by Elsevier ,2006
- Prions as adaptive conduits of memory and inheritanceNature Reviews Genetics, 2005
- Cooperative Binding of the Leucine-Responsive Regulatory Protein (Lrp) to DNAJournal of Molecular Biology, 2005
- Structure-guided Analysis Reveals Nine Sequence Motifs Conserved among DNA Amino-methyl-transferases, and Suggests a Catalytic Mechanism for these EnzymesJournal of Molecular Biology, 1995
- Pyrimidine Regulation of theEscherichia coliandSalmonella typhimurium carABOperons: CarP and Integration Host Factor (IHF) Modulate the Methylation Status of a GATC Site Present in the Control RegionJournal of Molecular Biology, 1995
- A Caulobacter DNA Methyltransferase that Functions only in the Predivisional CellJournal of Molecular Biology, 1994
- Purification, sequence, and cellular localization of a novel chromosomal protein that binds to Methylated DNACell, 1992
- Effect of dam methylation on Tn5 transpositionJournal of Molecular Biology, 1988
- IS10 transposition is regulated by DNA adenine methylationCell, 1985