Related Experiment Video
Updated: Jun 30, 2026

Targeting Biofilm Associated Staphylococcus aureus Using Resazurin Based Drug-susceptibility Assay
Published on: May 5, 2016
Antibacterial activity of closantel against methicillin-resistant Staphylococcus aureus and itsbiofilm
1Department of Thoracic Surgery, Affiliated Changsha Hospital of Xiangya School of Medicine (First Hospital of Changsha), Central South University, Changsha 410005, China. ttt202305m@126.com.
Objectives:
The antimicrobial resistance of Staphylococcus aureus (S. aureus) has become a challenge in the treatment of infectious diseases. It is of great clinical value to discovery effective antimicrobial agents against multi-drug resistant S. aureus and its biofilms. This study aims to explore the antibacterial activity of the antiparasitic drug closantel against methicillin-resistant S. aureus and its biofilms through drug repurposing.
Methods:
The sensitivity of S. aureus to closantel was assessed using microbroth dilution and disk diffusion methods. The bacteriostatic and bactericidal activities of closantel were determined by time-kill curves and colony count. Scanning electron microscopy combined with SYTOX Green and DiSC3(5) fluorescence probes were used to study the bactericidal mechanism of closantel. The influence of resistance was assessed by continuous exposure to sub-inhibitory concentrations of closantel. The anti-biofilm activity was evaluated using 96-well plates and crystal violet staining, and cytotoxicity was measured using the CCK-8 assay.
Results:
The minimal inhibitory concentration (MIC) of closantel for both methicillin-sensitive and methicillin-resistant S. aureus ranged from 0.125 to 1.000 μg/mL. Disk diffusion tests showed that 80 μg of closantel created an inhibition zone, which increased in diameter with higher drug amounts. Sub-inhibitory concentrations (0.031 μg/mL) of closantel significantly inhibited S. aureus proliferation, reducing bacterial turbidity from 0.26±0.00 to 0.11±0.01 (t=16.06, P<0.001), with stronger inhibition at higher concentrations. Closantel at 0.25×MIC inhibited S. aureus proliferation for 12 hours, while 1×MIC inhibited it for over 24 hours, with the number of viable bacteria decreasing as the drug concentration increased. Mechanistic studies indicated that closantel effectively disrupted the integrity of S. aureus cell membranes, significantly increasing SYTOX Green and DiSC3(5) fluorescence intensity. Even after 25 days of continuous exposure to sub-inhibitory concentrations of closantel, no resistance developed. Closantel at 0.0625 μg/mL significantly inhibited biofilm formation, reducing it from 1.29±0.16 to 0.62±0.04 (t=11.62, P<0.001), showing a clear dose-dependent effect. Closantel at 2 μg/mL also significantly eradicated established biofilms, reducing biofilm mass from 1.62±0.34 to 0.51±0.39 (t=4.84, P<0.01). Additionally, closantel exhibited extremely low cytotoxicity, with half-maximal lethal concentrations for HepG2 liver cancer cells and normal LO2 liver cells both exceeding 64 μg/mL.
Conclusions:
Closantel exhibits strong antibacterial activity against S. aureus and its biofilm with low cytotoxicity against human cells, making it a promising candidate for new therapeutic strategies against S. aureus-related infections.
Insights
The antiparasitic drug closantel shows potent antibacterial activity against Staphylococcus aureus (S. aureus) and its biofilms. This study suggests closantel is a promising candidate for treating S. aureus infections with low cytotoxicity.
Area of Science:
- Microbiology
- Pharmacology
- Drug Repurposing
Background:
- Antimicrobial resistance in Staphylococcus aureus (S. aureus) poses a significant clinical challenge.
- Effective treatments against multi-drug resistant S. aureus and its biofilms are urgently needed.
Purpose of the Study:
- To investigate the antibacterial potential of the antiparasitic drug closantel against methicillin-resistant S. aureus (MRSA) and its biofilms.
- To explore the drug repurposing of closantel as a novel therapeutic strategy.
Main Methods:
- Microbroth dilution and disk diffusion assays determined S. aureus sensitivity to closantel.
- Time-kill curves and scanning electron microscopy elucidated the bactericidal mechanism.
- Biofilm inhibition and eradication assays evaluated anti-biofilm activity.
- Cytotoxicity was assessed using CCK-8 assays on liver cell lines.
Main Results:
- Closantel demonstrated potent activity against both methicillin-sensitive and resistant S. aureus strains, with MICs ranging from 0.125 to 1.000 μg/mL.
- Closantel disrupted bacterial cell membranes and inhibited biofilm formation in a dose-dependent manner.
- No resistance to closantel was observed even after prolonged exposure to sub-inhibitory concentrations.
- Closantel exhibited very low cytotoxicity against human liver cells (HepG2 and LO2).
Conclusions:
- Closantel possesses significant antibacterial and anti-biofilm efficacy against S. aureus.
- Its low cytotoxicity and lack of induced resistance make it a promising candidate for novel therapeutic strategies.
- Drug repurposing of closantel offers a viable approach to combat S. aureus infections.
More Related Videos
09:39A Platform of Anti-biofilm Assays Suited to the Exploration of Natural Compound Libraries
Published on: December 27, 2016
06:36Improved Enzyme Protection Assay to Study Staphylococcus aureus Internalization and Intracellular Efficacy of Antimicrobial Compounds
Published on: September 8, 2021
Related Concept Videos
Biofilms
Antimicrobial Effectiveness
Mechanism of Antibiotic Resistance in MRSA
Clinical Significance of Antibiotic Resistance