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Published on: June 24, 2018
The susceptibility of prosthetic biomaterials to infection
A M Carbonell1, B D Matthews, D Dréau
1Department of General Surgery, Carolinas Medical Center, 1000 Blythe Boulevard, MEB #601, Charlotte, NC 28203, USA.
Background:
Despite the use of a sterile technique and the administration of prophylactic antibiotics during surgical procedures, mesh infection continues to complicate the use of biomaterials. The purpose of this study was to compare the susceptibility to infection of prosthetic biomaterials in a live-animal model.
Methods:
The following seven prosthetic mesh biomaterials were used in this study. Expanded polytetrafluoroethylene (ePTFE) with silver/chlorhexidine (DM+), ePTFE (DM), porcine intestinal submucosa (S), polypropylene (M), ePTFE/polypropylene (X), hyaluronate/carboxymethylcellulose/polypropylene (SM), and human acellular dermal matrix (A). Lewis rats (n = 108) underwent creation of a single ventral hernia; 105 of them were repaired with a different mesh (2-cm2 piece). Twelve pieces of each mesh were inoculated at the time of hernia repair with 10(8) Staphylococcus aureus (n = 84). Three pieces of each mesh were placed without bacterial inoculation (n = 21). In three animals, no mesh was placed; instead, the peritoneum of the hernia defect was inoculated (n = 3). After 5 days, the animals were killed and the mesh was explanted (peritoneum for the nonmesh control). The mesh was vortex-washed and incubated in tryptic soy broth. Bacterial counts were determined using serial dilutions and spot plates and quantified in colony-forming units (CFU) per square centimeter of mesh present in the vortex wash fluid (wash count) and the soy broth (broth count). Data are presented as the mean log(10), with analysis of variance (ANOVA) and Tukey's test used to determine significance (p < 0.05).
Results:
The DM+ material had no detectable live bacteria in the wash or broth counts in 10 of 12 tested samples (p = 0.05). Of the samples that showed bacterial growth, the peritoneum control group had a lower wash count than A (p = 0.05) and the lowest broth count of all the materials except for DM+ (p = 0.05). In addition, SM had a significantly lower wash count than A (p = 0.05), with no broth count difference. In regard to wash and broth counts, DM, M, X, SM, S, and A were no different (p = NS).
Conclusions:
The DM+ material was the least susceptible to infection. Impregnation with silver/chlorhexidine killed the inoculated bacteria, preventing their proliferation on the mesh surface. Other than DM+, native peritoneal tissue appears to be the least susceptible to infection. Silver/chlorhexidine appears to be an effective bactericidal agent for use with mesh biomaterials.
Insights
Mesh biomaterial infection is a complication. Silver/chlorhexidine-impregnated mesh (DM+) showed the least susceptibility to infection in a rat hernia model, with native peritoneal tissue also demonstrating low infection rates.
Area of Science:
- Biomaterials Science
- Surgical Innovation
- Infectious Disease Research
Background:
- Mesh infection remains a challenge despite sterile techniques and prophylactic antibiotics.
- Prosthetic biomaterials are crucial in surgical repairs but susceptible to complications.
- Understanding biomaterial infection susceptibility is vital for improving patient outcomes.
Purpose of the Study:
- To compare the infection susceptibility of various prosthetic biomaterials.
- To evaluate the efficacy of silver/chlorhexidine impregnation in preventing mesh infection.
- To assess infection rates in a live-animal model using Staphylococcus aureus.
Main Methods:
- Seven prosthetic mesh biomaterials were tested in a rat ventral hernia model.
- Meshes were inoculated with Staphylococcus aureus or left sterile.
- Bacterial counts (CFU/cm²) were quantified after explantation and incubation.
Main Results:
- Silver/chlorhexidine-impregnated mesh (DM+) demonstrated no detectable live bacteria in most samples.
- Native peritoneal tissue showed lower bacterial counts compared to most tested meshes.
- No significant difference in infection rates was observed among non-impregnated meshes (DM, M, X, SM, S, A).
Conclusions:
- Silver/chlorhexidine impregnation significantly reduces mesh susceptibility to infection.
- Native peritoneal tissue exhibits inherent resistance to infection.
- Silver/chlorhexidine is an effective agent for preventing bacterial proliferation on mesh biomaterials.
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