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Effectiveness of Cinnamon Oil Coating on K-wire as an Antimicrobial Agent against Staphylococcus Epidermidis
1Orthopaedics Department, Sardjito Hospital, Yogyakarta, Indonesia.
Background:
Chronic osteomyelitis remains one of the common problems with the use of orthopaedic implants. Staphylococcus epidermidis is notorious for its biofilm formation on indwelling medical devices and is one of the most frequent pathogenic agents in chronic osteomyelitis. Cinnamon oil has been proven to be an effective antimicrobial agent against several bacteria, including S. epidermidis. The eradication of S. epidermidis and prevention of biofilm formation on medical devices are desirable outcomes.
Objective:
To study the antimicrobial effect of cinnamon oil coating on K-wire against S. epidermidis and to quantify the most effective concentration of cinnamon oil coating on the K-wire.
Method:
The cinnamon oil was divided in ten different concentrations, from 0.002% to 1%, and subsequently applied to the Kirschner wire (K-wire). Its antimicrobial effect was determined by agar well diffusion method (MHA). Cinnamon oil coated K-wires were planted on S. epidermidis inoculated Muller-Hinton Agar (MHA) plate. The size of the zone of inhibition was recorded to the nearest mm, and this was compared to gentamycin, fosfomycin, vancomycin, netilmycin.
Result:
The cream based 1% concentration cinnamon oil coating on K-wire showed the strongest antimicrobial effect on S. epidermidis inoculated MHA plate. This was evident especially in the fourth repetition, with an inhibition zone diameter (IZD) of 19 mm. In the 1% concentration repetitions, the highest mean IZD of the 4 repetitions was 14 mm (intermediate according NCCLS). The mean IZD results demonstrate that cinnamon oil has 46.3% of the effectiveness of gentamycin, 49.1% of fosfomycin, 59.6% of vancomycin, and 43.4% of netilmycin.
Conclusion:
In this in-vitro study, cream based cinnamon oil coating on K-wire is effective against S. epidermidis, though less effective compared to gentamycin, fosfomycin, vancomycin and netilmycin.
Key Words:
Cinnamon oil, K-wire, antimicrobial, S.epidermidis.
Insights
Cinnamon oil coating on Kirschner wires (K-wires) demonstrated antimicrobial effectiveness against Staphylococcus epidermidis in vitro. While effective, its potency was lower compared to standard antibiotics like gentamycin and vancomycin.
Area of Science:
- Orthopaedic Surgery
- Infectious Diseases
- Materials Science
Background:
- Chronic osteomyelitis is a significant complication associated with orthopaedic implants.
- Staphylococcus epidermidis is a primary pathogen in device-related infections due to its biofilm-forming capabilities.
- Cinnamon oil exhibits known antimicrobial properties against various bacteria, including S. epidermidis.
Purpose of the Study:
- To evaluate the antimicrobial efficacy of cinnamon oil when applied as a coating to Kirschner wires (K-wires).
- To determine the optimal concentration of cinnamon oil for coating K-wires to inhibit S. epidermidis growth.
- To compare the antimicrobial activity of cinnamon oil-coated K-wires against common antibiotics.
Main Methods:
- Ten concentrations of cinnamon oil (0.002% to 1%) were prepared and applied to K-wires.
- The agar well diffusion method using Muller-Hinton Agar (MHA) was employed to assess antimicrobial activity.
- Zones of inhibition around coated K-wires were measured and compared against gentamycin, fosfomycin, vancomycin, and netilmycin.
Main Results:
- A 1% cream-based cinnamon oil coating on K-wires exhibited the most significant antimicrobial effect against S. epidermidis.
- The highest mean zone of inhibition for the 1% concentration was 14 mm, indicating intermediate effectiveness.
- Cinnamon oil demonstrated 43.4% to 59.6% of the antimicrobial effectiveness of the tested antibiotics.
Conclusions:
- Cream-based cinnamon oil coating on K-wires shows in vitro efficacy against S. epidermidis.
- The antimicrobial activity of cinnamon oil is less potent than that of gentamycin, fosfomycin, vancomycin, and netilmycin.
- Further research may explore synergistic combinations or optimized formulations for enhanced antimicrobial performance.
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