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Published on: February 9, 2024
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.
Abstract:
The most common mechanism of trimethoprim (TMP)-resistance is the acquisition of dihydrofolate reductase enzyme resistant to this drug. Previous molecular characterization of TMP-genes resistance in Chilean isolates of Shigella sonnei searching for dfrA1 and dfrA8, showed solely the presence of dfrA8 (formerly dhfrIIIc). However, these genetic markers were absent in S. sonnei strains further isolated during an outbreak in 2009. To identify the TMP-resistance gene in these strains, a genomic DNA library from a TMP-resistant (TMP(R)) S. sonnei representative strain for the outbreak was used to clone, select and identify a TMP-resistance marker. The TMP(R) clone was sequenced by primer walking, identifying the presence of the dfrA14 gene in the sul2-strA'-dfrA14-'strA-strB gene arrangement, harbored in a native 6779-bp plasmid. The same plasmid was isolated by transforming with a ~4.2 MDa plasmid extracted from several TMP(R) S. sonnei strains into Escherichia coli. This plasmid, named pABC-3, was present only in dfrA14-positive strains and was homologous to a previously described pCERC-1, but different due to the absence of an 11-bp repetitive unit. The distribution of dfrA1, dfrA8, and dfrA14 TMP-resistance genes was determined in 126 TMP(R) S. sonnei isolates. Most of the strains (96%) carried only one of the three TMP-resistance genes assessed. Thus, all strains obtained during the 2009-outbreak harbored only dfrA14, whereas, dfrA8 was the most abundant gene marker before outbreak and, after the outbreak dfrA1 seems have appeared in circulating strains. According to PFGE, dfrA14-positive strains were clustered in a genetically related group including some dfrA1- and dfrA8-positive strains; meanwhile other genetic group included most of the dfrA8-positive strains. This distribution also correlated with the isolation period, showing a dynamics of trimethoprim genetic markers prevalent in Chilean S. sonnei strains. To our knowledge, dfrA14 gene associated to a small non-conjugative plasmid was detected for the first time in Shigella. Apparently, the strain causing the outbreak must have been introduced, changing drastically the genetic distribution of trimethoprim resistance in Chilean S. sonnei strains.
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.
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