Roving methyltransferases generate a mosaic epigenetic landscape and influence evolution in Bacteroides fragilis group.

Nat Commun

Bacterial Pathogenesis and Antimicrobial Resistance Unit, LCIM, NIAID, NIH, Bethesda, MD, USA.

Published: July 2023

AI Article Synopsis

  • Three types of DNA methyl modifications play crucial roles in bacterial physiology, influencing functions like phage defense and virulence control, yet much of the methylation diversity in bacteria remains unexplored.
  • Research focused on the Bacteroides fragilis group (BFG), prevalent in the human gut and linked to multi-drug resistant infections, used advanced sequencing to analyze the genomic and epigenomic diversity of clinical isolates from the NIH Clinical Center.
  • The findings revealed that individual BFG species house numerous unique DNA methylation motifs and a vast array of methyltransferase genes, suggesting significant uncharted methylation diversity driven by genetic exchanges among phage genomes.

Article Abstract

Three types of DNA methyl modifications have been detected in bacterial genomes, and mechanistic studies have demonstrated roles for DNA methylation in physiological functions ranging from phage defense to transcriptional control of virulence and host-pathogen interactions. Despite the ubiquity of methyltransferases and the immense variety of possible methylation patterns, epigenomic diversity remains unexplored for most bacterial species. Members of the Bacteroides fragilis group (BFG) reside in the human gastrointestinal tract as key players in symbiotic communities but also can establish anaerobic infections that are increasingly multi-drug resistant. In this work, we utilize long-read sequencing technologies to perform pangenomic (n = 383) and panepigenomic (n = 268) analysis of clinical BFG isolates cultured from infections seen at the NIH Clinical Center over four decades. Our analysis reveals that single BFG species harbor hundreds of DNA methylation motifs, with most individual motif combinations occurring uniquely in single isolates, implying immense unsampled methylation diversity within BFG epigenomes. Mining of BFG genomes identified more than 6000 methyltransferase genes, approximately 1000 of which were associated with intact prophages. Network analysis revealed substantial gene flow among disparate phage genomes, implying a role for genetic exchange between BFG phages as one of the ultimate sources driving BFG epigenome diversity.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10333322PMC
http://dx.doi.org/10.1038/s41467-023-39892-6DOI Listing

Publication Analysis

Top Keywords

bacteroides fragilis
8
fragilis group
8
dna methylation
8
bfg
7
roving methyltransferases
4
methyltransferases generate
4
generate mosaic
4
mosaic epigenetic
4
epigenetic landscape
4
landscape influence
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!