Optimization of a Lethal, Combat-Relevant Model of Sterile Inflammation in Mice for Drug Candidate Screening

Kariana E Rios1,2, Yonas Alamneh1, Lacie M Werner1

  • 1Wound Infections Department, Bacterial Diseases Branch, Center for Infectious Diseases Research, Walter Reed Army Institute of Research, Silver Spring, MD 20910, USA.

Military Medicine
|August 20, 2024
PubMed
Abstract

Insights

This study optimized a tissue-bone matrix (TBX) mouse model to screen drugs for treating trauma-induced systemic inflammatory response syndrome (SIRS) and multiple organ dysfunction syndrome (MODS). The model effectively mimics severe trauma, aiding in the evaluation of immunomodulatory therapies.

Area of Science:

  • Trauma research
  • Immunology
  • Drug discovery

Background:

  • Extensive trauma in military Service Members can cause severe sterile inflammation (SIRS), progressing to multiple organ dysfunction syndrome (MODS) and death.
  • MODS is a significant cause of mortality in trauma admissions, posing challenges in prolonged care scenarios.
  • Optimizing a lethal mouse model of SIRS/MODS is crucial for evaluating immunomodulatory drugs.

Purpose of the Study:

  • To optimize an existing mouse model of lethal SIRS/MODS.
  • To establish a platform for screening immunomodulatory drugs for trauma-related conditions.

Main Methods:

  • A tissue-bone matrix (TBX) was created from mouse bones and muscles and implanted subcutaneously.
  • Mice were administered different TBX concentrations and observed for mortality.
  • The effects of ketamine/xylazine (K/X) anesthesia versus isoflurane on TBX-induced mortality were assessed.
  • The efficacy of Eritoran, a toll-like receptor 4 antagonist, was tested in the TBX model.

Main Results:

  • Ketamine/xylazine (K/X) anesthesia significantly increased TBX-induced mortality compared to isoflurane.
  • TBX doses of 15%, 17.5%, and 20% caused mortality in 50%, 80%, and 100% of mice, respectively, within 48 hours.
  • Eritoran, at doses of 20 mg/kg or 40 mg/kg, did not effectively rescue mice from TBX-induced mortality.

Conclusions:

  • A TBX mouse model of SIRS/MODS was successfully optimized for therapeutic intervention screening.
  • The detrimental effects of K/X anesthesia on TBX lethality warrant further investigation.
  • The TBX model, mimicking crush injuries and necrosis, is a valuable tool for evaluating novel therapeutics against trauma-induced SIRS/MODS.