Genetic Stabilization of the Drug-Resistant PMEN1 Pneumococcus Lineage by Its Distinctive DpnIII

Rory A Eutsey1, Evan Powell1, Janina Dordel2

  • 1Center of Excellence in Biofilm Research, Allegheny Health Network, Pittsburgh, Pennsylvania, USA.

Mbio
|June 18, 2015
PubMed
Abstract

Insights

The DpnIII restriction-modification system in Streptococcus pneumoniae (pneumococcus) limits genetic recombination, contributing to genomic stability in the successful PMEN1 lineage. Disruption of DpnIII increases genomic diversity.

Area of Science:

  • Microbiology
  • Genomics
  • Molecular Biology

Background:

  • Streptococcus pneumoniae (pneumococcus) is a major human pathogen with significant genomic diversity.
  • Genomic plasticity, driven by gene acquisition, contributes to pneumococcal adaptability, antibiotic resistance, and vaccine evasion.
  • The PMEN1 lineage is a pandemic, multidrug-resistant strain characterized by a relatively stable genome.

Purpose of the Study:

  • To characterize the DpnIII restriction-modification (R-M) system found in the PMEN1 lineage.
  • To investigate the role of DpnIII in regulating homologous recombination and genome plasticity in pneumococcus.
  • To test the hypothesis that R-M systems fine-tune genomic plasticity in bacterial lineages.

Main Methods:

  • Comparative genomic analysis to identify R-M systems in pneumococcal isolates.
  • Biochemical characterization of the DpnIII endonuclease and methylase activities.
  • In vitro recombination assays to assess the effect of DpnIII on transformation frequency.
  • Phylogenetic analysis of pneumococcal isolates with varying DpnIII status.

Main Results:

  • PMEN1 isolates possess the DpnIII R-M system, distinct from DpnI and DpnII found in other strains.
  • DpnIII cleaves unmethylated DNA at 5' GATC 3' and reduces recombination frequency in vitro.
  • Two PMEN1 isolates with disrupted DpnIII endonuclease showed a higher rate of genomic divergence.
  • The R-M locus is proposed as a key determinant of genetic acquisition and genome plasticity.

Conclusions:

  • The DpnIII R-M system acts as a barrier to horizontal gene transfer, promoting genomic stability in the PMEN1 lineage.
  • The type of R-M system encoded by a bacterial lineage significantly influences its genome plasticity.
  • Mechanisms that enhance genomic stability may be crucial for the long-term success of highly adapted bacterial strains like PMEN1.

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