Inhibition of the purinergic pathway prolongs mouse lung allograft survival

Kaifeng Liu1, Andrea Vergani, Picheng Zhao

  • 11 Department of Medicine/Pediatrics, Boston Children's Hospital, Harvard Medical School, Boston, Massachusetts.

Insights

Blocking the ATP/purinergic pathway with oxidized ATP (oATP) significantly reduced lung allograft rejection and improved survival. This novel approach offers a promising new strategy for enhancing lung transplant outcomes.

Area of Science:

  • Immunology
  • Transplantation Biology
  • Pharmacology

Background:

  • Lung transplant survival is limited by current immunosuppression strategies.
  • Adenosine triphosphate (ATP) released from activated T cells acts as a costimulatory molecule via the P2X purinergic receptor 7 (P2XR7).

Purpose of the Study:

  • To investigate the role of blocking the ATP/purinergic pathway, specifically P2XR7, using oxidized ATP (oATP) in modulating mouse lung allograft rejection.
  • To assess the potential of oATP to rescue established lung allografts.

Main Methods:

  • Mouse lung allografts (BALB/c to C57BL6) were treated with suramin or oATP.
  • Evaluations included lung function, histology, thoracic imaging, and allo-immune responses at 15 to ≥ 60 days post-transplant.
  • oATP was also administered after rejection onset to assess rescue potential.

Main Results:

  • Suramin and oATP treatment significantly reduced acute rejection and prolonged allograft survival beyond 60 days.
  • Treated lungs showed reduced inflammatory cell infiltration, less rejection, improved lung function, and decreased CD4/CD8 T cell activation.
  • oATP alone demonstrated superior outcomes compared to cyclosporine alone, with no additive benefit from combination therapy.

Conclusions:

  • Blocking the P2XR7 pathway with oATP is a promising therapeutic strategy to reduce lung allograft rejection and improve long-term survival.
  • This pathway represents a novel target for improving outcomes in lung transplantation.

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