IL-33 mediates Pseudomonas induced airway fibrogenesis and is associated with CLAD
Mudassir M Banday1, Sangeetha B Rao2, Shruthi Shankar3
1Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts.
Background:
Long term outcomes of lung transplantation are impacted by the occurrence of chronic lung allograft dysfunction (CLAD). Recent evidence suggests a role for the lung microbiome in the occurrence of CLAD, but the exact mechanisms are not well defined. We hypothesize that the lung microbiome inhibits epithelial autophagic clearance of pro-fibrotic proteins in an IL-33 dependent manner, thereby augmenting fibrogenesis and risk for CLAD.
Methods:
Autopsy derived CLAD and non-CLAD lungs were collected. IL-33, P62 and LC3 immunofluorescence was performed and assessed using confocal microscopy. Pseudomonas aeruginosa (PsA), Streptococcus Pneumoniae (SP), Prevotella Melaninogenica (PM), recombinant IL-33 or PsA-lipopolysaccharide was co-cultured with primary human bronchial epithelial cells (PBEC) and lung fibroblasts in the presence or absence of IL-33 blockade. Western blot analysis and quantitative reverse transcription (qRT) PCR was performed to evaluate IL-33 expression, autophagy, cytokines and fibroblast differentiation markers. These experiments were repeated after siRNA silencing and upregulation (plasmid vector) of Beclin-1.
Results:
Human CLAD lungs demonstrated markedly increased expression of IL-33 and reduced basal autophagy compared to non-CLAD lungs. Exposure of co-cultured PBECs to PsA, SP induced IL-33, and inhibited PBEC autophagy, while PM elicited no significant response. Further, PsA exposure increased myofibroblast differentiation and collagen formation. IL-33 blockade in these co-cultures recovered Beclin-1, cellular autophagy and attenuated myofibroblast activation in a Beclin-1 dependent manner.
Conclusion:
CLAD is associated with increased airway IL-33 expression and reduced basal autophagy. PsA induces a fibrogenic response by inhibiting airway epithelial autophagy in an IL-33 dependent manner.
Insights
Chronic lung allograft dysfunction (CLAD) involves increased IL-33 and reduced autophagy. Pseudomonas aeruginosa inhibits autophagy via IL-33, promoting fibrogenesis and CLAD risk.
Area of Science:
- Immunology
- Microbiology
- Pulmonary Medicine
Background:
- Chronic lung allograft dysfunction (CLAD) is a major complication after lung transplantation.
- The lung microbiome's role in CLAD pathogenesis is suspected but mechanistically unclear.
- This study investigates the lung microbiome's impact on epithelial autophagy and fibrogenesis in CLAD.
Purpose of the Study:
- To elucidate the mechanism by which the lung microbiome contributes to CLAD.
- To determine the role of IL-33 and autophagy in lung allograft fibrosis.
- To identify potential therapeutic targets for preventing CLAD.
Main Methods:
- Analysis of human CLAD and non-CLAD lung tissues.
- Co-culture experiments with primary human bronchial epithelial cells and lung fibroblasts exposed to bacterial species.
- Assessment of IL-33, autophagy markers (LC3, P62, Beclin-1), and fibrogenesis markers.
- Intervention with IL-33 blockade and Beclin-1 modulation.
Main Results:
- CLAD lungs exhibit elevated IL-33 and diminished autophagy.
- Pseudomonas aeruginosa (PsA) and Streptococcus pneumoniae (SP) induce IL-33 and suppress autophagy in epithelial cells.
- PsA promotes myofibroblast differentiation and collagen production, which is reversed by IL-33 blockade.
- IL-33 blockade restores autophagy and attenuates fibrosis in a Beclin-1 dependent manner.
Conclusions:
- CLAD is linked to increased airway IL-33 and impaired autophagy.
- PsA drives lung fibrosis by inhibiting epithelial autophagy through an IL-33-dependent pathway.
- Targeting the IL-33/autophagy axis may offer a strategy to mitigate CLAD progression.
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