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.

Scientific Reports
|August 6, 2026
PubMed

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.

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