Related Experiment Video
Updated: Jan 15, 2026

Visualization of Bacterial Resistance using Fluorescent Antibiotic Probes
Published on: March 2, 2020
Correlation of QRDR mutations and MIC levels in fluoroquinolone-resistant Staphylococcus aureus clinical isolates
Sohyeong Kim1,2, Xianglan Xuan1, Minju Jung1,2
1Department of Clinical Laboratory Science, College of Health Sciences, Catholic University of Pusan, Busan, Republic of Korea.
Abstract:
Antimicrobial resistance is a global health problem. Among various antibiotic-resistant bacteria, Staphylococcus aureus, particularly methicillin-resistant S. aureus (MRSA), is a clinically important pathogen responsible for serious infections because of its multidrug resistance (MDR) and association with high mortality rates. The MDR nature of MRSA, including resistance to macrolides, aminoglycosides, fluoroquinolones, and tetracyclines, limits therapeutic choices and poses significant challenges in clinical management. This study aimed to analyze the correlation between mutations in the quinolone resistance-determining region (QRDR) and the minimum inhibitory concentration (MIC) of fluoroquinolone drugs, such as ciprofloxacin and levofloxacin, in MRSA and methicillin-sensitive S. aureus (MSSA). A total of 63 S. aureus clinical strains were isolated from blood samples of sepsis patients. DNA sequence analysis was performed using gDNA extracted from all S. aureus clinical isolates to identify mutations in the QRDR of gyrA, gyrB, parC, and parE. The MICs of antimicrobials were determined by the broth microdilution method. Among these genes, only mutations in parC showed a statistically significant positive correlation with elevated MIC levels, underscoring the primary role of parC in mediating resistance in our clinical isolates. Notably, all isolates exhibited a substitution at serine 80 (S80) in parC, and those harboring simultaneous substitutions at both S80 and glutamic acid 84 (E84) demonstrated markedly increased MIC values for both drugs. These findings reinforce previously reported associations between dual mutations and high-level fluoroquinolone resistance, while highlighting the distinct contribution of parC among the QRDR genes analyzed in this study. Furthermore, we found that the most frequent mutation in the QRDR was the cytosine-to-thymine mutation.IMPORTANCEAntimicrobial resistance is a growing global health crisis, making bacterial infections harder to treat. Staphylococcus aureus, especially MRSA, is a major concern due to its resistance to multiple antibiotics, including fluoroquinolones like ciprofloxacin and levofloxacin. Our study highlights how specific genetic mutations in the quinolone resistance-determining region (QRDR) influence fluoroquinolone resistance. We found that mutations in the parC gene, particularly substitutions at serine 80 (S80) and glutamic acid 84 (E84), significantly increase resistance. Understanding these mutations helps predict antibiotic resistance and may guide more effective treatment strategies. By identifying key genetic changes that drive fluoroquinolone resistance, our research contributes to developing improved diagnostic tools and targeted therapies to combat drug-resistant S. aureus infections. This knowledge is crucial for clinicians and researchers working to control the spread of antibiotic-resistant bacteria and improve patient outcomes.
Insights
Mutations in the parC gene of Staphylococcus aureus, particularly dual substitutions, significantly increase resistance to fluoroquinolone antibiotics like ciprofloxacin and levofloxacin. This finding aids in predicting and combating antimicrobial resistance.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Antimicrobial resistance (AMR) is a critical global health issue.
- Methicillin-resistant Staphylococcus aureus (MRSA) exhibits multidrug resistance (MDR), complicating treatment and increasing mortality.
- Fluoroquinolones are vital antibiotics, but resistance limits their efficacy.
Purpose of the Study:
- To investigate the correlation between mutations in the quinolone resistance-determining region (QRDR) and fluoroquinolone minimum inhibitory concentrations (MICs) in Staphylococcus aureus.
- To identify specific genetic alterations in MRSA and methicillin-sensitive S. aureus (MSSA) associated with resistance to ciprofloxacin and levofloxacin.
Main Methods:
- Analysis of 63 Staphylococcus aureus clinical isolates from sepsis patients.
- DNA sequencing of QRDR genes (gyrA, gyrB, parC, parE).
- Determination of antimicrobial MICs using broth microdilution.
Main Results:
- Mutations in the parC gene showed a significant positive correlation with elevated fluoroquinolone MICs.
- All isolates had a serine 80 (S80) substitution in parC.
- Dual substitutions at S80 and glutamic acid 84 (E84) in parC markedly increased MIC values for ciprofloxacin and levofloxacin.
Conclusions:
- The parC gene plays a primary role in mediating fluoroquinolone resistance in the studied clinical isolates.
- Dual mutations in parC are strongly associated with high-level fluoroquinolone resistance in Staphylococcus aureus.
- Understanding these QRDR mutations can inform diagnostic tools and therapeutic strategies against drug-resistant S. aureus infections.
More Related Videos
09:26Antibiotic Efficacy Testing in an Ex vivo Model of Pseudomonas aeruginosa and Staphylococcus aureus Biofilms in the Cystic Fibrosis Lung
Published on: January 22, 2021
04:56Detection of Helicobacter pylori Infection and Antibiotic Resistance via Stool Quantitative Polymerase Chain Reaction Analysis
Published on: May 16, 2025