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Antimicrobial effect of pimozide by targeting ROS-mediated killing in Staphylococcus aureus
Siddhartha Kumar1, Kumar Sandeep2, Rakesh Kumar1
1Department of Biotechnology, Central University of South Bihar, Gaya, Bihar, India.
Abstract:
In spite of the higher nosocomial and community-acquired infections caused by Staphylococcus aureus, emerging drug resistance is a leading cause of increased mortality and morbidity associated with the overuse of antimicrobials. It is an emergent need to find out new molecules to combat such infections. In the present study, we analyzed the antibacterial effect of pimozide (PMZ) against gram-positive and gram-negative bacterial strains, including methicillin-sensitive (MSSA) and methicillin-resistant (MRSA) S. aureus. The growth of MSSA and MRSA was completely inhibited at concentrations of 12.5 and 100 μg/mL, respectively, which is referred to as 1× minimum inhibitory concentration (MIC). The cell viability was completely eliminated within 90 min of PMZ treatment (2× MIC) through reactive oxygen species (ROS)-mediated killing without affecting cell membrane permeability. It suppressed α-hemolysin production and biofilm formation of different S. aureus strains by almost 50% at 1× MIC concentration, and was found to detach matured biofilm. PMZ treatment effectively eliminates S. aureus infection in Caenorhabditis elegans and improves its survival by 90% and is found safe to use with no hemolytic effect on human and chicken blood tissues. Taken together, it is concluded that PMZ may turn out to be an effective antibacterial for treating bacterial infections including MSSA and MRSA.
Insights
Pimozide (PMZ) effectively inhibits Staphylococcus aureus, including drug-resistant strains like MRSA. This compound shows promise as a novel antibacterial agent, reducing infection and biofilm formation with minimal toxicity.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Antimicrobial resistance in Staphylococcus aureus (S. aureus) poses a significant global health threat, increasing mortality and morbidity.
- The overuse of existing antimicrobials has accelerated the emergence of drug-resistant bacterial strains, necessitating the discovery of novel therapeutic agents.
Purpose of the Study:
- To investigate the antibacterial efficacy of pimozide (PMZ) against various bacterial strains, including methicillin-sensitive (MSSA) and methicillin-resistant (MRSA) S. aureus.
- To elucidate the mechanism of action of PMZ, including its effects on bacterial viability, virulence factors, and biofilm formation.
Main Methods:
- Minimum inhibitory concentration (MIC) determination for MSSA and MRSA.
- Assessment of bacterial cell viability and membrane permeability following PMZ treatment.
- Quantification of α-hemolysin production and biofilm formation.
- In vivo efficacy testing in a Caenorhabditis elegans infection model.
- Evaluation of hemolytic effects on human and chicken blood tissues.
Main Results:
- Pimozide demonstrated complete inhibition of MSSA and MRSA growth at 12.5 μg/mL and 100 μg/mL (1× MIC), respectively.
- PMZ (2× MIC) eliminated bacterial viability within 90 minutes via reactive oxygen species (ROS)-mediated killing, without compromising cell membrane integrity.
- PMZ suppressed α-hemolysin production and biofilm formation by approximately 50% at 1× MIC and effectively detached mature biofilms.
- In vivo studies showed PMZ effectively cleared S. aureus infections in C. elegans, improving survival by 90%, and exhibited no hemolytic activity.
Conclusions:
- Pimozide exhibits potent broad-spectrum antibacterial activity against S. aureus, including resistant strains.
- The mechanism involves ROS-mediated cell death and inhibition of key virulence factors like α-hemolysin and biofilm.
- PMZ demonstrates safety and efficacy in preclinical models, suggesting its potential as a novel therapeutic agent for S. aureus infections.
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