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1-((2,4-Dichlorophenethyl)Amino)-3-Phenoxypropan-2-ol Kills Pseudomonas aeruginosa through Extensive Membrane Damage
Valerie Defraine1,2, Veerle Liebens1, Evelien Loos1
1Centre of Microbial and Plant Genetics, KU Leuven, Leuven, Belgium.
Abstract:
The ever increasing multidrug-resistance of clinically important pathogens and the lack of novel antibiotics have resulted in a true antibiotic crisis where many antibiotics are no longer effective. Further complicating the treatment of bacterial infections are antibiotic-tolerant persister cells. Besides being responsible for the recalcitrant nature of chronic infections, persister cells greatly contribute to the observed antibiotic tolerance in biofilms and even facilitate the emergence of antibiotic resistance. Evidently, eradication of these persister cells could greatly improve patient outcomes and targeting persistence may provide an alternative approach in combatting chronic infections. We recently characterized 1-((2,4-dichlorophenethyl)amino)-3-phenoxypropan-2-ol (SPI009), a novel anti-persister molecule capable of directly killing persisters from both Gram-negative and Gram-positive pathogens. SPI009 potentiates antibiotic activity in several in vitro and in vivo infection models and possesses promising anti-biofilm activity. Strikingly, SPI009 restores antibiotic sensitivity even in resistant strains. In this study, we investigated the mode of action of this novel compound using several parallel approaches. Genetic analyses and a macromolecular synthesis assays suggest that SPI009 acts by causing extensive membrane damage. This hypothesis was confirmed by liposome leakage assay and membrane permeability studies, demonstrating that SPI009 rapidly impairs the bacterial outer and inner membranes. Evaluation of SPI009-resistant mutants, which only could be generated under severe selection pressure, suggested a possible role for the MexCD-OprJ efflux pump. Overall, our results demonstrate the extensive membrane-damaging activity of SPI009 and confirm its clinical potential in the development of novel anti-persister therapies.
Insights
A new compound, SPI009, effectively kills antibiotic-tolerant persister cells and restores antibiotic sensitivity in resistant strains by damaging bacterial membranes. This offers a promising strategy against multidrug-resistant infections.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- The rise of multidrug-resistant pathogens and antibiotic-tolerant persister cells poses a significant global health crisis.
- Persister cells contribute to chronic infections, biofilm tolerance, and the emergence of antibiotic resistance.
- Novel therapeutic strategies are urgently needed to combat challenging bacterial infections.
Purpose of the Study:
- To investigate the mode of action of the novel anti-persister compound SPI009.
- To evaluate the potential of SPI009 as a therapeutic agent against bacterial infections.
Main Methods:
- Genetic analyses and macromolecular synthesis assays were employed.
- Liposome leakage assays and membrane permeability studies were conducted.
- SPI009-resistant mutants were generated and analyzed.
Main Results:
- SPI009 was found to cause extensive damage to bacterial outer and inner membranes.
- The compound potentiates antibiotic activity and exhibits anti-biofilm properties.
- A potential role for the MexCD-OprJ efflux pump in SPI009 resistance was identified.
Conclusions:
- SPI009 demonstrates significant membrane-damaging activity against bacterial persister cells.
- The compound shows promise in restoring antibiotic sensitivity in resistant strains.
- SPI009 represents a potential novel therapeutic for combating chronic and multidrug-resistant bacterial infections.
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