Novel ovine model of methicillin-resistant Staphylococcus aureus-induced pneumonia and sepsis
Perenlei Enkhbaatar1, Collette Joncam, Lillian Traber
1Department of Anesthesiology, University of Texas Medical Branch, and Shriners Hospital for Children, Galveston, TX 77551, USA. peenkhba@utmb.edu
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA)-related pneumonia and/or sepsis are a frequent serious menace. The aim of the study was to establish a standardized and reproducible model of MRSA-induced septic pneumonia to evaluate new therapies. Sheep were operatively prepared for chronic study. After 5 days' recovery, tracheostomy was performed under anesthesia, and smoke injury was induced by inhalation of cotton smoke (48 breaths, <40 degrees C). Methicillin-resistant S. aureus (AW6) (approximately 2.5x10(11) colony-forming units) was instilled into the airway by a bronchoscope. After the injury, animals were awakened and maintained on mechanical ventilation by 100% oxygen for first 3 h, and thereafter, oxygen concentration was adjusted according to blood gases. The sheep were resuscitated by lactated Ringer solution with an initial rate of 2 mL kg(-1) h(-1) that was further adjusted according to hematocrit. Study groups include (1) sham (noninjured, nontreated; n=6), (2) S+MRSA (exposed to smoke inhalation and MRSA, nontreated; n=6), and (3) smoke (exposed to smoke inhalation alone; n=6). Injured (S+MRSA) animals showed the signs of severe sepsis-related multiple organ failure 3 h after insult. Cardiovascular morbidity was evidenced by severe hypotension, with increased heart rate, cardiac output, left atrial pressure and severely decreased systemic vascular resistance index, and left ventricle stroke work index. Pulmonary dysfunction was characterized by deteriorated gas exchange (PaO2/FIO2 and pulmonary shunt) and increased ventilatory pressures. The S+MRSA group showed significantly greater lung tissue water content, myeloperoxidase activity, and cytokine production compared with uninjured sham animals. Microvascular hyperpermeability was evidenced by marked fluid retention (fluid net balance), decreased plasma protein with decreased plasma oncotic pressure, and increased pulmonary microvascular pressure. All these changes were accompanied by 6- to 7-fold increase in plasma nitrite/nitrate and increased production of reactive nitrogen species in lung. The smoke inhalation alone had a little or no effect on these variables. This model closely mimics hyperdynamic human sepsis. The excessive production of NO may be extensively involved in the pathogenic process.
Insights
This study developed a sheep model of Methicillin-resistant Staphylococcus aureus (MRSA)-induced septic pneumonia. The model accurately mimics human sepsis, showing severe organ failure and cardiovascular/pulmonary dysfunction.
Area of Science:
- Critical Care Medicine
- Infectious Diseases
- Animal Models
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) causes severe pneumonia and sepsis.
- Developing reliable animal models is crucial for evaluating new therapies.
Purpose of the Study:
- To establish a standardized and reproducible ovine model of MRSA-induced septic pneumonia.
- To utilize this model for assessing novel therapeutic interventions.
Main Methods:
- Sheep underwent tracheostomy followed by smoke inhalation and instillation of MRSA (AW6).
- Animals were mechanically ventilated and resuscitated with lactated Ringer solution.
- Groups included sham, smoke inhalation + MRSA, and smoke inhalation alone.
Main Results:
- The MRSA-septic pneumonia model exhibited signs of severe sepsis and multiple organ failure within 3 hours.
- Significant cardiovascular and pulmonary dysfunction, including hypotension and impaired gas exchange, were observed.
- Increased lung tissue water, myeloperoxidase activity, cytokine production, and reactive nitrogen species were noted in the MRSA group.
Conclusions:
- The developed ovine model closely mimics hyperdynamic human sepsis.
- This model provides a robust platform for preclinical evaluation of MRSA-septic pneumonia treatments.
- Excessive nitric oxide production appears to play a significant role in the pathogenesis.
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