Streptococcus suis Encodes Multiple Allelic Variants of a Phase-Variable Type III DNA Methyltransferase, ModS, That

Greg Tram1, Freda E-C Jen1, Zachary N Phillips1

  • 1Institute for Glycomics, Griffith University, Gold Coast, Queensland, Australia.

Msphere
|May 13, 2021
PubMed

Insights

Epigenetic regulation by Streptococcus suis ModS DNA methyltransferase controls gene expression, impacting bacterial growth and antibiotic resistance. This study reveals phasevarion switching in a Gram-positive organism, crucial for understanding pathogenesis and vaccine development.

Area of Science:

  • Microbiology
  • Epigenetics
  • Bacterial Pathogenesis

Background:

  • Streptococcus suis is a significant pathogen causing meningitis in humans and invasive diseases in pigs.
  • Phase-variable DNA methyltransferases, part of restriction-modification systems, regulate gene expression epigenetically through phasevarions.
  • A Type III DNA methyltransferase, ModS, with a simple sequence repeat (SSR) tract, was previously identified in S. suis.

Purpose of the Study:

  • To investigate the epigenetic gene regulation by the phase-variable Type III DNA methyltransferase ModS in Streptococcus suis.
  • To characterize the ON-OFF switching mechanism of ModS alleles and their impact on bacterial phenotypes.
  • To establish the first example of a Type III restriction-modification system regulating a phasevarion in a Gram-positive bacterium.

Main Methods:

  • Analysis of simple sequence repeat (SSR) tract length variation in the modS gene.
  • Demonstration of biphasic ON-OFF switching of ModS expression dependent on SSR tract length.
  • Single-molecule real-time (SMRT) sequencing to confirm ModS methyltransferase activity.

Main Results:

  • Biphasic ON-OFF switching of ModS1 and ModS2 alleles was observed, dependent on SSR tract length.
  • ModS1 and ModS2 were confirmed as active methyltransferases in S. suis.
  • Switching of ModS alleles regulated distinct phasevarions, with ModS2 affecting bacterial growth and antibiotic resistance.

Conclusions:

  • This study presents the first characterization of a phase-variable Type III DNA methyltransferase controlling a phasevarion in a Gram-positive organism.
  • ModS-mediated phase variation significantly influences S. suis phenotypes, including growth and antibiotic resistance.
  • Understanding ModS phase variation is essential for identifying stable antigenic targets for vaccine and antimicrobial development against S. suis.

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