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Updated: Aug 6, 2025

Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Resistance to antibacterial antifolates in multidrug-resistant Staphylococcus aureus: prevalence estimates and
Louise Kime1, Tina Waring1, Merianne Mohamad1
1School of Molecular and Cellular Biology, Faculty of Biological Sciences, University of Leeds, Leeds LS2 9JT, UK.
Objectives:
Antibacterial antifolate drugs might have a wider role in the management of staphylococcal infection. One factor that could potentially limit their use in this context is pre-existing resistance. Here we explored the prevalence and genetic basis for resistance to these drugs in a large collection (n = 1470) of multidrug-resistant (MDR) Staphylococcus aureus.
Methods:
Strains were subjected to susceptibility testing to detect resistance to trimethoprim, sulfamethoxazole, co-trimoxazole and the investigational drug, iclaprim. Whole-genome sequences were interrogated to establish the genetic basis for resistance.
Results:
According to CLSI breakpoints, 15.2% of the strains were resistant to trimethoprim, 5.2% to sulfamethoxazole and 4.1% to co-trimoxazole. Using the proposed breakpoint for iclaprim, 89% of the trimethoprim-resistant strains exhibited non-susceptibility to this agent. Sulfamethozaxole resistance was exclusively the result of mutation in the drug target (dihydropteroate synthase). Resistance to trimethoprim and iclaprim also resulted from mutation in the target (dihydrofolate reductase; DHFR) but was more commonly associated with horizontal acquisition of genes encoding drug-insensitive DHFR proteins. Among the latter, we identified a novel gene (dfrL) encoding a DHFR with ∼35% identity to native and known resistant DHFRs, which was confirmed via molecular cloning to mediate high-level resistance.
Conclusions:
This study provides a detailed picture of the genotypes underlying staphylococcal resistance to antifolate drugs in clinical use and in development. Prevalence estimates suggest that resistance to the diaminopyrimidines (trimethoprim/iclaprim) is not uncommon among MDR S. aureus, and considerably higher than observed for sulfamethoxazole or co-trimoxazole.
Insights
Prevalence of resistance to trimethoprim and iclaprim in multidrug-resistant Staphylococcus aureus is higher than for sulfamethoxazole. Novel genes like dfrL contribute to high-level resistance, impacting antifolate drug efficacy.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Antibacterial antifolate drugs show promise for treating staphylococcal infections.
- Pre-existing resistance can limit the clinical utility of these agents.
- Understanding resistance mechanisms is crucial for effective treatment strategies.
Purpose of the Study:
- To investigate the prevalence and genetic basis of resistance to antifolate drugs in multidrug-resistant Staphylococcus aureus (MDR S. aureus).
- To assess resistance to trimethoprim, sulfamethoxazole, co-trimoxazole, and the investigational drug iclaprim.
Main Methods:
- Susceptibility testing was performed on 1470 MDR S. aureus strains.
- Whole-genome sequencing was utilized to identify genetic determinants of resistance.
- Molecular cloning confirmed the function of a novel resistance gene.
Main Results:
- Resistance rates were 15.2% for trimethoprim, 5.2% for sulfamethoxazole, and 4.1% for co-trimoxazole.
- 89% of trimethoprim-resistant strains showed non-susceptibility to iclaprim.
- Resistance mechanisms included target mutations (dihydropteroate synthase, dihydrofolate reductase) and horizontal gene acquisition, including a novel dfrL gene conferring high-level resistance.
Conclusions:
- Diaminopyrimidine resistance (trimethoprim/iclaprim) is prevalent in MDR S. aureus.
- Resistance to sulfamethoxazole is primarily due to target mutations.
- The identification of novel resistance genes like dfrL provides insights into antifolate drug resistance in S. aureus.
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