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Updated: May 6, 2026

A Novel Method to Determine the Longitudinal Antibacterial Activity of Drug-Eluting Materials
Published on: March 3, 2023
Antimicrobial properties and elution kinetics of linezolid from polymethylmethacrylate
Abstract:
Polymethylmethacrylate (PMMA) impregnated with antibiotics is widely used in the treatment of osteomyelitis and infected arthroplasties. With the emergence of resistant bacterial strains, linezolid, which is active against gram-positive bacteria and toward which resistance has been scarce, has been suggested as an alternative. In the current in vitro study, the authors sought to determine and compare the efficacy and elution kinetics of linezolid from PMMA. Polymethylmethacrylate beads impregnated with linezolid, vancomycin, or gentamicin alone and in combinations were placed in suspensions of vancomycin-resistant enterococci, methicillin-resistant Staphylococcus aureus, Klebsiella pneumoniae, Escherichia coli, and Staphylococcus epidermidis. The leaching out concentrations of antibiotics and growth inhibitory time in days were recorded. The mechanical strength of cement beads was evaluated in accordance with International Standard 5833. The growth inhibitory time of linezolid was significantly longer than that of vancomycin and gentamicin for methicillin-resistant S aureus, vancomycin-resistant enterococci, and S epidermidis. The combination of linezolid with gentamicin and vancomycin significantly increased the growth inhibitory time compared with either antibiotic used alone. Linezolid alone or in combination with vancomycin and gentamicin showed satisfactory elution kinetics and antimicrobial activity in vitro without compromising the mechanical strength of PMMA. Future research evaluating the in vivo profile of linezolid-loaded PMMA in experimental animals is needed before it can be considered for human use.
Insights
Linezolid-impregnated polymethylmethacrylate (PMMA) beads show promising efficacy against resistant gram-positive bacteria, offering a potential alternative for osteomyelitis and infected arthroplasty treatments.
Area of Science:
- Biomaterials science
- Infectious diseases
- Pharmacology
Background:
- Polymethylmethacrylate (PMMA) antibiotic beads are standard for osteomyelitis and infected arthroplasties.
- Emerging antibiotic resistance necessitates novel treatment strategies.
- Linezolid, effective against Gram-positive bacteria with low resistance rates, is a potential candidate.
Purpose of the Study:
- To evaluate the in vitro efficacy and elution kinetics of linezolid from PMMA.
- To compare linezolid's performance against vancomycin and gentamicin.
- To assess the impact of linezolid-loaded PMMA on mechanical properties.
Main Methods:
- PMMA beads loaded with linezolid, vancomycin, or gentamicin (alone/combined) were tested against resistant bacterial strains.
- Antibiotic elution concentrations and growth inhibition times were measured.
- Mechanical strength of PMMA beads was assessed per International Standard 5833.
Main Results:
- Linezolid demonstrated significantly longer growth inhibitory times against MRSA, VRE, and S. epidermidis compared to vancomycin and gentamicin.
- Combinations of linezolid with vancomycin/gentamicin enhanced inhibitory times versus single agents.
- Linezolid-loaded PMMA exhibited satisfactory elution and antimicrobial activity without compromising mechanical strength.
Conclusions:
- Linezolid-loaded PMMA shows potent in vitro antimicrobial activity and favorable elution kinetics.
- Linezolid represents a viable alternative antibiotic for PMMA bone cement applications.
- Further in vivo studies are required to validate its clinical utility.
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