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Left Lung Orthotopic Transplantation in a Juvenile Porcine Model for ESLP
Published on: February 14, 2022
Inhaled sphingosine reduces bronchial Pseudomonas aeruginosa burden during porcine ex vivo lung perfusion and shows
Yongjie Liu1,2,3, Fabian Schumacher4, Yuqing Wu5
1Department of Thoracic and Cardiovascular Surgery, Thoracic Transplantation, West German Heart and Vascular Center, University Hospital Essen, University Duisburg-Essen, Essen, Germany. yongjie@gzhmu.edu.cn.
Abstract:
Pseudomonas aeruginosa infection remains a major challenge in donor lung management and post-transplant respiratory care, particularly in the setting of antimicrobial resistance. Ex vivo lung perfusion (EVLP) provides an opportunity for localized antimicrobial intervention before transplantation and allows detailed assessment of infection-associated lung injury under controlled conditions. In this study, we evaluated inhaled sphingosine in a porcine EVLP model of acute P. aeruginosa airway contamination using three experimental groups: uninfected controls, infected lungs treated with 0.9% NaCl, and infected lungs treated with sphingosine. This design allowed us to assess both the impact of P. aeruginosa infection on EVLP physiology and the effects of sphingosine on bacterial burden and infection-associated lung changes. Infected porcine lungs showed greater declines in dynamic and static compliance than uninfected controls, whereas pulmonary artery pressure, peak airway pressure, oxygen-exchange capacity, lactate accumulation, lung weight gain, and histological injury scores were not significantly worsened under the present experimental conditions. Inhaled sphingosine reduced bronchial P. aeruginosa CFU counts, whereas 0.9% NaCl did not. Sphingosine treatment did not further impair lung physiology, oxygenation, lactate accumulation, histological injury, or lung weight gain. Mechanistic analyses showed association of sphingosine with bacterial cardiolipin and increased colocalization of sphingosine with P. aeruginosa, consistent with a membrane-associated antibacterial mechanism described in previous studies. In exploratory experiments using four explanted human recipient lungs, sphingosine inhalation increased sphingosine levels in bronchial and parenchymal tissue and altered related sphingolipid metabolites, including sphingosine-1-phosphate, ceramide, and sphingomyelin, without apparent acute histological damage in assessed airway samples. One of the four human specimens showed bacterial colonization, in which a marked reduction in detectable bacterial growth after sphingosine inhalation was observed as a hypothesis-generating finding. Together, these data suggest that inhaled sphingosine can reduce acutely accessible bronchial P. aeruginosa burden during porcine EVLP without detectable short-term adverse effects and provide a basis for further investigation of sphingosine-related lipid metabolism and local antimicrobial strategies during EVLP.
Insights
Inhaled sphingosine effectively reduced Pseudomonas aeruginosa bacterial counts in donor lungs during ex vivo lung perfusion (EVLP) without causing harm. This suggests sphingosine as a potential antimicrobial agent for lung transplantation.
Area of Science:
- Pulmonary Medicine
- Microbiology
- Biochemistry
Background:
- Pseudomonas aeruginosa infection poses a significant threat to donor lung viability and post-transplant outcomes, especially with rising antimicrobial resistance.
- Ex vivo lung perfusion (EVLP) offers a critical window for localized antimicrobial treatments and detailed assessment of lung injury before transplantation.
- Current strategies for managing P. aeruginosa in donor lungs during EVLP are limited.
Purpose of the Study:
- To evaluate the efficacy of inhaled sphingosine in reducing P. aeruginosa burden in a porcine model of EVLP.
- To assess the impact of P. aeruginosa infection and sphingosine treatment on EVLP physiology and lung integrity.
- To explore the preliminary effects of sphingosine on human explanted lungs.
Main Methods:
- A porcine EVLP model was established with acute P. aeruginosa airway contamination.
- Three groups were used: uninfected controls, infected lungs treated with saline (0.9% NaCl), and infected lungs treated with sphingosine.
- Bacterial counts, lung physiology (compliance, pressures, oxygenation), biochemical markers (lactate), lung weight, and histology were analyzed. Exploratory studies were conducted on human explanted lungs.
Main Results:
- Infected lungs exhibited reduced dynamic and static compliance compared to controls.
- Inhaled sphingosine significantly decreased bronchial P. aeruginosa colony-forming units (CFUs) without negatively impacting lung physiology or histology.
- Sphingosine treatment showed association with bacterial cardiolipin and increased colocalization with P. aeruginosa, suggesting a membrane-disrupting mechanism. Human lung studies indicated increased sphingolipid metabolites without acute damage.
Conclusions:
- Inhaled sphingosine demonstrates potential as a localized antimicrobial agent to reduce P. aeruginosa burden in donor lungs during EVLP.
- Sphingosine treatment appears safe in the short term, with no significant adverse effects on lung physiology or integrity observed in the porcine model.
- Further research into sphingolipid metabolism and sphingosine's role in antimicrobial strategies for lung transplantation is warranted.

