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Visualization of Bacterial Resistance using Fluorescent Antibiotic Probes
Published on: March 2, 2020
Novel mechanisms of macrolide resistance revealed by
Na Wang1,2,3, Xiaogang Xu1,2, Li Xiao4
1Institute of Antibiotics, Huashan Hospital, Fudan University, Shanghai, China.
Abstract:
Mycoplasma pneumoniae is an important pathogen causing upper and lower respiratory tract infections in children and other age groups. Macrolides are the recommended treatments of choice for M. pneumoniae infections. However, macrolide resistance in M. pneumoniae is increasing worldwide, which complicates the treatment strategies. The mechanisms of macrolide resistance have been extensively studied focusing on the mutations in 23S rRNA and ribosomal proteins. Since the secondary treatment choice for pediatric patients is very limited, we decided to look for potential new treatment strategies in macrolide drugs and investigate possible new mechanisms of resistance. We performed an in vitro selection of mutants resistant to five macrolides (erythromycin, roxithromycin, azithromycin, josamycin, and midecamycin) by inducing the parent M. pneumoniae strain M129 with increasing concentrations of the drugs. The evolving cultures in every passage were tested for their antimicrobial susceptibilities to eight drugs and mutations known to be associated with macrolide resistance by PCR and sequencing. The final selected mutants were also analyzed by whole-genome sequencing. Results showed that roxithromycin is the drug that most easily induces resistance (at 0.25 mg/L, with two passages, 23 days), while with midecamycin it is most difficult (at 5.12 mg/L, with seven passages, 87 days). Point mutations C2617A/T, A2063G, or A2064C in domain V of 23S rRNA were detected in mutants resistant to the 14- and 15-membered macrolides, while A2067G/C was selected for the 16-membered macrolides. Single amino acid changes (G72R, G72V) in ribosomal protein L4 emerged during the induction by midecamycin. Genome sequencing identified sequence variations in dnaK, rpoC, glpK, MPN449, and in one of the hsdS (MPN365) genes in the mutants. Mutants induced by the 14- or 15-membered macrolides were resistant to all macrolides, while those induced by the 16-membered macrolides (midecamycin and josamycin) remained susceptible to the 14- and 15-membered macrolides. In summary, these data demonstrated that midecamycin is less potent in inducing resistance than other macrolides, and the induced resistance is restrained to the 16-membered macrolides, suggesting a potential benefit of using midecamycin as a first treatment choice if the strain is susceptible.
Insights
Macrolide resistance in Mycoplasma pneumoniae is a growing concern. Midecamycin is less likely to induce resistance compared to other macrolides, suggesting its potential as a first-line treatment for susceptible strains.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Mycoplasma pneumoniae causes significant respiratory infections.
- Macrolides are primary treatments, but resistance is increasing globally.
- Limited alternative treatments exist for pediatric patients.
Purpose of the Study:
- Investigate novel macrolide resistance mechanisms in M. pneumoniae.
- Evaluate the potential of different macrolides in inducing resistance.
- Identify macrolides with a lower propensity to select for resistance.
Main Methods:
- In vitro selection of M. pneumoniae mutants using five macrolides.
- Monitoring antimicrobial susceptibility and resistance mutations.
- Whole-genome sequencing of resistant mutants.
Main Results:
- Roxithromycin induced resistance fastest; midecamycin was slowest.
- Specific 23S rRNA mutations correlated with resistance to 14/15-membered macrolides (C2617A/T, A2063G, A2064C) and 16-membered macrolides (A2067G/C).
- Midecamycin-induced mutants showed resistance only to 16-membered macrolides, not 14/15-membered ones.
Conclusions:
- Midecamycin demonstrates a lower potential for inducing broad macrolide resistance.
- Induced resistance to midecamycin is specific to 16-membered macrolides.
- Midecamycin may be a valuable first-line treatment option for susceptible M. pneumoniae infections.
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