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Updated: Jul 23, 2025

Visualizing Lung Cellular Adaptations during Combined Ozone and LPS Induced Murine Acute Lung Injury
Published on: March 21, 2021
Mitochondria of lung venular capillaries mediate lung-liver cross talk in pneumonia
Memet T Emin1, Michael J Lee2, Jahar Bhattacharya3
1Department of Pediatrics, Pediatric Critical Care and Hospital Medicine, Columbia University Irving Medical Center, New York, New York, United States.
Abstract:
Failure of the lung's endothelial barrier underlies lung injury, which causes the high mortality acute respiratory distress syndrome (ARDS). Multiple organ failure predisposes to the mortality, but mechanisms are poorly understood. Here, we show that mitochondrial uncoupling protein 2 (UCP2), a component of the mitochondrial inner membrane, plays a role in the barrier failure. Subsequent lung-liver cross talk mediated by neutrophil activation causes liver congestion. We intranasally instilled lipopolysaccharide (LPS). Then, we viewed the lung endothelium by real-time confocal imaging of the isolated, blood-perfused mouse lung. LPS caused alveolar-capillary transfer of reactive oxygen species and mitochondrial depolarization in lung venular capillaries. The mitochondrial depolarization was inhibited by transfection of alveolar Catalase and vascular knockdown of UCP2. LPS instillation caused lung injury as indicated by increases in bronchoalveolar lavage (BAL) protein content and extravascular lung water. LPS or Pseudomonas aeruginosa instillation also caused liver congestion, quantified by liver hemoglobin and plasma aspartate aminotransferase (AST) increases. Genetic inhibition of vascular UCP2 prevented both lung injury and liver congestion. Antibody-mediated neutrophil depletion blocked the liver responses, but not lung injury. Knockdown of lung vascular UCP2 mitigated P. aeruginosa-induced mortality. Together, these data suggest a mechanism in which bacterial pneumonia induces oxidative signaling to lung venular capillaries, known sites of inflammatory signaling in the lung microvasculature, depolarizing venular mitochondria. Successive activation of neutrophils induces liver congestion. We conclude that oxidant-induced UCP2 expression in lung venular capillaries causes a mechanistic sequence leading to liver congestion and mortality. Lung vascular UCP2 may present a therapeutic target in ARDS.NEW & NOTEWORTHY We report that mitochondrial injury in lung venular capillaries underlies barrier failure in pneumonia, and venular capillary uncoupling protein 2 (UCP2) causes neutrophil-mediated liver congestion. Using in situ imaging, we found that epithelial-endothelial transfer of H2O2 activates UCP2, depolarizing mitochondria in venular capillaries. The conceptual advance from our findings is that mitochondrial depolarization in lung capillaries mediates liver cross talk through circulating neutrophils. Pharmacologic blockade of UCP2 could be a therapeutic strategy for lung injury.
Insights
Mitochondrial uncoupling protein 2 (UCP2) in lung capillaries drives lung injury and liver congestion during pneumonia. Inhibiting UCP2 may offer a therapeutic strategy for acute respiratory distress syndrome (ARDS).
Area of Science:
- Pulmonary Medicine
- Mitochondrial Biology
- Critical Care
Background:
- Acute respiratory distress syndrome (ARDS) involves lung endothelial barrier failure and high mortality, often with multiple organ dysfunction.
- Mechanisms linking lung injury to organ failure, particularly liver congestion, remain poorly understood.
- Mitochondrial uncoupling protein 2 (UCP2) is a key regulator of mitochondrial function.
Purpose of the Study:
- To investigate the role of mitochondrial uncoupling protein 2 (UCP2) in lung barrier failure and subsequent organ cross-talk.
- To elucidate the mechanisms by which lung injury leads to liver congestion in a pneumonia model.
- To assess the therapeutic potential of targeting UCP2 in lung injury and ARDS.
Main Methods:
- Intranasal instillation of lipopolysaccharide (LPS) or Pseudomonas aeruginosa in mice to induce lung injury.
- Real-time confocal imaging of isolated, blood-perfused mouse lungs to visualize endothelial barrier function and mitochondrial activity.
- Genetic manipulation (vascular knockdown of UCP2) and pharmacological interventions (Catalase transfection, neutrophil depletion) were employed.
Main Results:
- LPS instillation caused reactive oxygen species transfer and mitochondrial depolarization in lung venular capillaries, indicating barrier dysfunction.
- Inhibition of UCP2 or Catalase prevented mitochondrial depolarization and significantly reduced lung injury (BAL protein, extravascular lung water).
- Lung injury induced by LPS or P. aeruginosa led to liver congestion, evidenced by increased liver hemoglobin and AST levels; UCP2 inhibition prevented this, while neutrophil depletion blocked liver responses but not lung injury.
Conclusions:
- Oxidant-induced UCP2 expression in lung venular capillaries initiates a cascade leading to neutrophil activation, liver congestion, and mortality in pneumonia.
- Mitochondrial depolarization in lung capillaries is a critical upstream event mediating lung-liver cross-talk.
- Targeting vascular UCP2 presents a promising therapeutic strategy for mitigating lung injury and associated multi-organ failure in ARDS.
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