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Updated: May 4, 2026

A Delayed Inoculation Model of Chronic Pseudomonas aeruginosa Wound Infection
Published on: February 20, 2020
Validation of a novel murine wound model of Acinetobacter baumannii infection
Mitchell G Thompson1, Chad C Black, Rebecca L Pavlicek
1Department of Wound Infections, Walter Reed Army Institute of Research, Silver Spring, Maryland, USA.
Abstract:
Patients recovering from traumatic injuries or surgery often require weeks to months of hospitalization, increasing the risk for wound and surgical site infections caused by ESKAPE pathogens, which include A. baumannii (the ESKAPE pathogens are Enterococcus faecium, Staphylococcus aureus, Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa, and Enterobacter species). As new therapies are being developed to counter A. baumannii infections, animal models are also needed to evaluate potential treatments. Here, we present an excisional, murine wound model in which a diminutive inoculum of a clinically relevant, multidrug-resistant A. baumannii isolate can proliferate, form biofilms, and be effectively treated with antibiotics. The model requires a temporary, cyclophosphamide-induced neutropenia to establish an infection that can persist. A 6-mm-diameter, full-thickness wound was created in the skin overlying the thoracic spine, and after the wound bed was inoculated, it was covered with a dressing for 7 days. Uninoculated control wounds healed within 13 days, whereas infected, placebo-treated wounds remained unclosed beyond 21 days. Treated and untreated wounds were assessed with multiple quantitative and qualitative techniques that included gross pathology, weight loss and recovery, wound closure, bacterial burden, 16S rRNA community profiling, histopathology, peptide nucleic acid-fluorescence in situ hybridization, and scanning electron microscopy assessment of biofilms. The range of differences that we are able to identify with these measures in antibiotic- versus placebo-treated animals provides a clear window within which novel antimicrobial therapies can be assessed. The model can be used to evaluate antimicrobials for their ability to reduce specific pathogen loads in wounded tissues and clear biofilms. Ultimately, the mouse model approach allows for highly powered studies and serves as an initial multifaceted in vivo assessment prior to testing in larger animals.
Insights
A new mouse model allows researchers to study multidrug-resistant Acinetobacter baumannii wound infections. This model effectively mimics human infections and aids in evaluating new antibiotic treatments for these difficult-to-treat pathogens.
Area of Science:
- Infectious Diseases
- Microbiology
- Translational Medicine
Background:
- Hospitalized patients face high risks of wound and surgical site infections from ESKAPE pathogens.
- Acinetobacter baumannii is a critical multidrug-resistant pathogen requiring novel therapeutic strategies.
- Effective evaluation of new antimicrobial therapies necessitates robust animal models.
Purpose of the Study:
- To develop and validate a murine excisional wound model for studying Acinetobacter baumannii infections.
- To assess the efficacy of antibiotic treatments in a clinically relevant, multidrug-resistant A. baumannii infection model.
- To provide a platform for preclinical evaluation of novel antimicrobial therapies.
Main Methods:
- A full-thickness excisional wound was created in mice with transient, cyclophosphamide-induced neutropenia.
- The wound bed was inoculated with a multidrug-resistant Acinetobacter baumannii isolate and covered with a dressing.
- Infected wounds were treated with antibiotics or placebo, and assessed using gross pathology, bacterial burden, histopathology, and biofilm analysis.
Main Results:
- The model successfully established persistent, multidrug-resistant A. baumannii infections with biofilm formation.
- Antibiotic treatment significantly improved wound closure and reduced bacterial burden compared to placebo.
- Multiple quantitative and qualitative techniques confirmed the model's ability to differentiate treatment effects.
Conclusions:
- This murine wound model provides a reliable system for studying A. baumannii pathogenesis and evaluating antimicrobial efficacy.
- The model supports the assessment of novel therapies targeting wound and surgical site infections.
- It serves as a valuable preclinical tool for advancing antibiotic development against multidrug-resistant pathogens.

