Acute respiratory distress syndrome (ARDS) is a disease consisting of impaired gas exchange and lung infiltration, which often needs intensive care therapy. The mortality of severe ARDS remains high (up to 50%) worldwide despite almost 50 years of extensive research1. The ARDS is defined by the Berlin Definition, including diagnostic criteria as timing, chest imaging, origin of edema and hypoxemia2. To better categorize patients with different levels of ARDS severity, three different degrees of hypoxemia are defined: mild (200 mmHg < PaO2/FIO2 ≤ 300 mmHg), moderate (100 mmHg < PaO2/FIO2 ≤ 200 mmHg), and severe (PaO2/FIO2 ≤ 100 mmHg)2. Different animal models with a focus on lung injury are widely used and accepted to examine the pathophysiological changes and different therapeutic approaches in ARDS3.
Animal models using endotoxins (e.g., intravenous infusion of bacteria, cecal ligation and puncture to mimic a sepsis-induced lung injury), ischemia/reperfusion models, smoke/burn ARDS models, infusion of oleic acid and bronchoalveolar lavage models are known3. Each model represents only a few pathophysiological changes with advantages and disadvantages to the study results3. This does not reflect the complexity of the ARDS disease. The combination of two proven models allows better conclusions about the pathophysiology of ARDS. In the presented model, we combined bronchoalveolar lavage and oleic acid infusion to mimic the complexity of the human ARDS. Oleic acid is an unsaturated fatty acid and acts directly on the alveolo-capillary unit of the lungs by triggering activation of innate immune receptors subsequently causing neutrophil accumulation, proinflammatory cytokine production and cell death4,5. Oleic acid infusion induces severe hypoxemia, increases in pulmonary arterial pressure and accumulation of extravascular lung water. Hypotension and myocardial depression due to right ventricular failure often occur. The induction of lung injury by repeated bronchoalveolar lavage (BAL) with balanced electrolyte solution reduces the alveolar surfactant lipid concentration3. Surfactants decrease alveolar surface tension and prevent alveolar collapse. BAL causes immediate hypoxemia and an increase of the alveolar-arterial oxygen difference3. Human ARDS is also associated with depletion of surfactant3. The disadvantages of this combined model are the necessity for central venous access, intubation and general anesthesia. Furthermore, the questionable mechanistic relevance (e.g., the oleic acid infusion) for translational aspects remains unclear. At least, it is difficult to determine which part of the lung injury (BAL vs. OAI, or both together) contributes to lung damage. The advantages of this model are its usability in large animals with familiar monitoring and instrumentation similar to human patients (no special equipment required), the good reproduction of the main aspects of ARDS and the possibility to study isolated ARDS without systemic inflammation (e.g., endotoxin models). In the following article, we give a detailed description of the double-hit (BAL and OAI) lung injury in pigs and provide representative data to characterize the stability of the compromises in lung function.