Emergence of Plasmid-Borne dfrA14 Trimethoprim Resistance Gene in Shigella sonnei

Alfonso Miranda1, Bárbara Ávila1, Patricia Díaz1

  • 1Programa de Microbiología y Micología, Facultad de Medicina, Instituto de Ciencias Biomédicas, Universidad de Chile Santiago, Chile.

Insights

A new trimethoprim-resistance gene, dfrA14, was identified in Shigella sonnei strains during a 2009 Chilean outbreak. This discovery highlights the dynamic evolution of antimicrobial resistance in bacterial populations.

Area of Science:

  • Microbiology
  • Genetics
  • Molecular Biology

Background:

  • Trimethoprim (TMP) resistance in Shigella sonnei is often mediated by dihydrofolate reductase enzyme mutations.
  • Previous studies in Chile identified dfrA8 as the primary TMP-resistance gene in S. sonnei isolates.
  • A 2009 outbreak revealed S. sonnei strains lacking previously identified TMP-resistance genes.

Purpose of the Study:

  • To identify the TMP-resistance gene responsible for the 2009 S. sonnei outbreak in Chile.
  • To characterize the genetic elements associated with TMP resistance in these strains.
  • To investigate the dynamics of TMP-resistance gene distribution in Chilean S. sonnei.

Main Methods:

  • Construction and screening of a genomic DNA library from a TMP-resistant S. sonnei strain.
  • Sequencing of the TMP-resistance clone to identify the specific gene and its arrangement.
  • Plasmid isolation, transformation into Escherichia coli, and characterization of the resistance-bearing plasmid (pABC-3).
  • Determination of dfrA1, dfrA8, and dfrA14 gene distribution in 126 TMP-resistant S. sonnei isolates.
  • Pulsed-field gel electrophoresis (PFGE) for genetic relatedness analysis.

Main Results:

  • The dfrA14 gene, part of a sul2-strA'-dfrA14-'strA-strB arrangement, was identified as the TMP-resistance marker in the 2009 outbreak strains.
  • A novel plasmid, pABC-3, carrying the dfrA14 gene, was characterized and found to be homologous to pCERC-1 but with variations.
  • dfrA14 was exclusively found in strains from the 2009 outbreak.
  • dfrA8 was prevalent before the outbreak, and dfrA1 appeared post-outbreak, indicating a shift in resistance gene prevalence.
  • PFGE analysis revealed genetic clustering of strains based on TMP-resistance genes and isolation period.

Conclusions:

  • The dfrA14 gene, associated with a small non-conjugative plasmid, represents a novel mechanism of TMP resistance in Shigella, detected for the first time.
  • The introduction of a new TMP-resistant strain carrying dfrA14 likely caused a significant shift in the genetic landscape of TMP resistance in Chilean S. sonnei.
  • The study demonstrates the dynamic nature of antimicrobial resistance gene evolution and dissemination in bacterial pathogens.