Xer1-mediated site-specific DNA inversions and excisions in Mycoplasma agalactiae

Stefan Czurda1, Wolfgang Jechlinger, Renate Rosengarten

  • 1Institute of Bacteriology, Mycology and Hygiene (IBMH), Department of Pathobiology, University of Veterinary Medicine Vienna, Veterinaerplatz 1, Vienna, Austria.

Insights

Mycoplasma agalactiae uses Xer1 recombinase for high-frequency Vpma phase switching. This process involves gene inversions and excisions at recombination sites, potentially representing a population-level cost for the pathogen.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Mycoplasma agalactiae causes contagious agalactia in sheep and goats.
  • Surface antigen variation via vpma gene recombination is crucial for pathogen evasion.
  • Xer1 recombinase mediates high-frequency Vpma phase switching.

Purpose of the Study:

  • To elucidate the mechanism of Xer1-mediated site-specific recombination in vpma genes.
  • To investigate the role of recombination site orientation in determining inversion or excision outcomes.
  • To confirm Xer1-mediated excisions occur in M. agalactiae under native conditions.

Main Methods:

  • Demonstration of Xer1 recombinase activity in Escherichia coli.
  • Analysis of recombination between direct and inverted repeat sequences in vpma genes.
  • Development and application of a lacZ reporter-based excision assay in M. agalactiae.

Main Results:

  • Xer1 recombinase catalyzes vpma gene inversions and excisions based on recombination site orientation.
  • Recombination between inverted sites leads to inversions; direct repeat sites lead to excisions.
  • Xer1-mediated excisions were confirmed in M. agalactiae type strain PG2 using the novel assay.

Conclusions:

  • Xer1 recombinase is the key enzyme for vpma gene rearrangements in M. agalactiae.
  • The orientation of recombination sites dictates whether gene inversion or excision occurs.
  • Xer1-mediated excisions may represent a fitness cost for maintaining high-frequency phase variation in M. agalactiae populations.

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