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Nitroxoline Shows Synergy with Colistin Potentiating its Bactericidal Efficacy in Opportunist Pathogen Pseudomonas
Debasrita RoyChowdhury1, Soumyananda Chakraborti2, Sukhendu Mandal3
1Department of Biomedical Science and Technology, The School of Biological Sciences, Ramakrishna Mission Vivekananda Educational and Research Institute, Howrah, 711202, West Bengal, India.
Abstract:
Pseudomonas aeruginosa is a highly virulent Gram-negative pathogen that exhibits multiple mechanisms of antibiotic resistance, including resistance to colistin, a last-resort therapeutic agent, posing a significant clinical challenge. Recently designated by the World Health Organization (WHO) as a high-priority pathogen, P. aeruginosa underscores the urgent need for novel therapeutic strategies. In this study, we explored the potential of combination therapy, specifically investigating the synergistic interaction between colistin and nitroxoline, a hydroxyquinoline derivative, against a highly colistin-resistant P. aeruginosa strain.Bacterial viability was assessed through growth curve analysis, and the mechanistic basis of the observed synergy was examined using membrane permeability assays, intracellular reactive oxygen species (ROS) quantification, and gene expression profiling via quantitative real-time PCR (qRT-PCR). Additionally, the impact of this combination on bacterial survival was evaluated by analyzing its effects on biofilm formation and persister cell development under antimicrobial stress, both critical contributors to chronic and treatment-refractory infections in humans.Our results demonstrate that nitroxoline potentiates the bactericidal activity of colistin by enhancing membrane permeability, leading to significant inhibition of planktonic growth and pronounced efficacy against structured microbial communities such as biofilms and persister cells. Furthermore, the combination therapy completely suppressed bacterial motility, a critical virulence trait that facilitates immune evasion.These findings present a compelling therapeutic strategy to combat antibiotic resistance in Gram-negative pathogens, including both wild-type and drug-resistant clinical isolates of P. aeruginosa and Acinetobacter baumannii. The study highlights the significant potential of the colistin-nitroxoline combination to mitigate colistin resistance and reduce the global burden of multidrug-resistant infections.
Insights
This study shows that combining colistin with nitroxoline effectively kills highly colistin-resistant Pseudomonas aeruginosa. This combination therapy enhances bacterial membrane permeability, combating biofilms and persister cells.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Pseudomonas aeruginosa is a high-priority pathogen with significant antibiotic resistance, especially to colistin.
- Colistin is a last-resort antibiotic, and resistance poses a major clinical challenge.
- Novel therapeutic strategies are urgently needed to combat multidrug-resistant Gram-negative infections.
Purpose of the Study:
- To investigate the synergistic interaction between colistin and nitroxoline against colistin-resistant Pseudomonas aeruginosa.
- To elucidate the mechanisms underlying the observed synergy.
- To evaluate the combination's efficacy against biofilms and persister cells.
Main Methods:
- Growth curve analysis to assess bacterial viability.
- Membrane permeability assays and reactive oxygen species (ROS) quantification.
- Gene expression profiling (qRT-PCR), biofilm assays, and persister cell analysis.
Main Results:
- Nitroxoline potentiates colistin's bactericidal activity by increasing membrane permeability.
- The combination significantly inhibits planktonic growth and is effective against biofilms and persister cells.
- Colistin-nitroxoline combination therapy suppressed bacterial motility and virulence.
Conclusions:
- Colistin-nitroxoline combination therapy offers a promising strategy against colistin-resistant Pseudomonas aeruginosa.
- This approach can mitigate colistin resistance and combat multidrug-resistant infections.
- The findings support the potential of this combination for treating infections caused by P. aeruginosa and Acinetobacter baumannii.
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