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Updated: May 31, 2025

Monitoring Intraspecies Competition in a Bacterial Cell Population by Cocultivation of Fluorescently Labelled Strains
Published on: January 18, 2014
Unveiling the critical roles of cellular metabolism suppression in antibiotic tolerance
Sayed Golam Mohiuddin1, Han Ngo1, Mehmet A Orman2
1William Brookshire Chemical and Biomolecular Engineering Department, University of Houston, Houston, TX, USA.
Abstract:
Metabolic inhibitors are known to exhibit complex interactions with antibiotics in bacteria, potentially acting as antagonists by inducing cell dormancy and promoting cell survival. However, the specific synergistic or antagonistic effects of these inhibitors depend on factors like their mechanisms of action, concentrations, and treatment timings, which require further investigation. In our study, we systematically explored the synergistic interactions of various metabolic inhibitors-such as chloramphenicol (a translation inhibitor), rifampicin (a transcription inhibitor), arsenate (an ATP production inhibitor), and thioridazine (a PMF inhibitor)-in combination with ofloxacin. We conducted this investigation under pre-, co-, and post-treatment conditions, employing a wide concentration range and utilizing four distinct synergy models. Chloramphenicol, rifampicin, and arsenate consistently showed minimal synergy scores, indicating a notable antagonistic relationship with ofloxacin across all models and conditions. In contrast, thioridazine consistently demonstrated elevated synergy scores, especially in pre- and co-treatment scenarios, albeit its synergy decreased during post-treatment conditions. When multivariable linear regression analyses were used for all drugs and conditions examined, a correlation between the synergy of thioridazine and its ability to suppress cellular energy metabolism became evident, underscoring the potential utility of certain metabolic inhibitors as effective anti-persistence adjuvants.
Insights
Metabolic inhibitors interact complexly with antibiotics. Thioridazine showed synergy with ofloxacin, especially when used together or before treatment, suggesting its potential as an anti-persistence adjuvant.
Area of Science:
- Microbiology
- Pharmacology
- Biochemistry
Background:
- Metabolic inhibitors can antagonize antibiotics by inducing bacterial dormancy.
- Understanding these interactions is crucial for effective antibiotic therapy.
- The specific effects depend on inhibitor type, concentration, and timing.
Purpose of the Study:
- To systematically investigate the synergistic interactions of metabolic inhibitors with ofloxacin.
- To evaluate the impact of pre-, co-, and post-treatment timings on these interactions.
- To identify metabolic inhibitors with potential as anti-persistence adjuvants.
Main Methods:
- Tested chloramphenicol, rifampicin, arsenate, and thioridazine with ofloxacin.
- Employed pre-, co-, and post-treatment conditions across a wide concentration range.
- Utilized four distinct synergy models and multivariable linear regression analysis.
Main Results:
- Chloramphenicol, rifampicin, and arsenate showed minimal synergy, indicating antagonism with ofloxacin.
- Thioridazine demonstrated significant synergy, particularly in pre- and co-treatment.
- Synergy of thioridazine correlated with its suppression of cellular energy metabolism.
Conclusions:
- Thioridazine exhibits synergistic effects with ofloxacin, especially when administered concurrently or prior to treatment.
- The ability to suppress cellular energy metabolism is linked to thioridazine's synergistic potential.
- Certain metabolic inhibitors, like thioridazine, may serve as effective anti-persistence adjuvants in combination therapy.
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