Differentiation in quinolone resistance by virulence genotype in Pseudomonas aeruginosa

Melissa Agnello1, Annie Wong-Beringer

  • 1School of Pharmacy, University of Southern California, Los Angeles, California, United States of America.

Plos One
|August 21, 2012
PubMed

Insights

Pseudomonas aeruginosa strains with the exoU gene are more likely to be fluoroquinolone-resistant and develop multiple resistance mutations compared to exoS+ strains. This suggests co-evolution of virulence and resistance traits in this pathogen.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Antimicrobial Resistance

Background:

  • Pseudomonas aeruginosa is a significant pathogen with increasing fluoroquinolone resistance.
  • The type III secretion system (TTSS) is crucial for virulence, with strains typically possessing either the exoS or exoU effector gene.
  • Fluoroquinolone resistance and TTSS genotype have been linked to differential virulence outcomes.

Purpose of the Study:

  • To investigate the correlation between TTSS effector genotype (exoS vs. exoU) and fluoroquinolone resistance mechanisms in P. aeruginosa.
  • To understand how TTSS genotype influences the development of resistance mutations.

Main Methods:

  • Analysis of 270 respiratory isolates of P. aeruginosa.
  • Determination of fluoroquinolone resistance prevalence based on TTSS genotype.
  • Sequencing of quinolone resistance-determining regions (QRDRs) in gyrA, gyrB, parC, and parE genes.

Main Results:

  • A higher proportion of exoU+ strains (63%) exhibited fluoroquinolone resistance compared to exoS+ strains (49%).
  • Strains with the exoU gene were more prone to acquiring multiple QRDR mutations, particularly in gyrA and parC, at lower minimum inhibitory concentrations (MICs).
  • The exoU+ subpopulation showed a greater likelihood of developing dual gyrA and parC mutations (48% vs. 24% in exoS+ strains).

Conclusions:

  • P. aeruginosa strains develop fluoroquinolone resistance mutations in a manner that correlates with their TTSS effector genotype.
  • The more virulent exoU+ strains appear to preferentially acquire resistance mutations, suggesting a co-evolution of virulence and resistance traits.
  • These findings highlight the clinical significance of understanding the interplay between virulence factors and antimicrobial resistance in P. aeruginosa.

Related Concept Videos

Gene Regulation in Microbial Communities: Quorum Sensing01:28

Gene Regulation in Microbial Communities: Quorum Sensing

Quorum sensing is a mechanism of bacterial communication that enables coordinated gene expression in response to changes in population density. This facilitates collective behaviors that enhance survival, resource acquisition, and ecological adaptation. This process relies on small signaling molecules called autoinducers that accumulate as bacterial populations grow. When a critical threshold concentration of autoinducers is reached, bacterial cells collectively modify gene expression,...
Mechanism of Antibiotic Resistance in MRSA01:25

Mechanism of Antibiotic Resistance in MRSA

Antibiotic resistance in bacteria arises when microorganisms evolve the ability to withstand drugs designed to kill them or inhibit their growth, rendering once-effective treatments useless. This phenomenon, driven by genetic change and selection under antibiotic exposure, poses a profound threat to modern medicine. Mechanisms include drug-inactivating enzymes (e.g., β-lactamases), efflux pumps that eject antibiotics, mutations altering antibiotic targets, decreased drug uptake, and acquisition...
Development of Antibiotic Resistance01:30

Development of Antibiotic Resistance

Antibiotic resistance is a major public health concern that arises when bacteria evolve mechanisms to withstand the effects of antibiotic treatments. This resistance can be intrinsic, acquired through genetic mutations, or transferred between bacteria via horizontal gene transfer. The development of antibiotic resistance poses significant challenges in treating bacterial infections and necessitates ongoing research to develop new therapeutic strategies.Intrinsic resistance occurs when bacterial...
Regulation of Bacterial Virulence01:28

Regulation of Bacterial Virulence

Pathogenic bacteria employ a range of regulatory mechanisms to modulate the expression of virulence genes in response to environmental and host-derived signals. These mechanisms ensure that virulence factors are expressed only under favorable conditions, thereby optimizing infection and survival strategies.Mechanisms of Virulence RegulationKey regulatory strategies include:Two-Component Systems: These consist of a membrane-bound sensor kinase and a cytoplasmic response regulator. Environmental...
Inhibitors of Bacterial DNA Synthesis01:28

Inhibitors of Bacterial DNA Synthesis

Bacterial pathogens depend on precise and efficient DNA replication to sustain infection. Two type II topoisomerases—DNA gyrase and topoisomerase IV—are critical to this process, as they resolve DNA supercoiling and unlink chromosomes during replication. Fluoroquinolones, synthetic derivatives of quinolones, exploit this mechanism by stabilizing the transient DNA–enzyme cleavage complex, preventing strand religation, and causing lethal double-strand breaks. These antibiotics are selectively...
Clinical Significance of Antibiotic Resistance01:25

Clinical Significance of Antibiotic Resistance

Methicillin-resistant Staphylococcus aureus (MRSA) presents a critical public health threat, arising from its capacity to resist β-lactam antibiotics due to acquisition of the mecA gene within the staphylococcal cassette chromosome mec (SCCmec). This gene encodes penicillin-binding protein 2a (PBP2a), which impairs binding efficacy of methicillin and other β-lactams. MRSA has evolved into distinct clonal lineages impacting humans and animals alike, reinforcing its significance within the One...