STING inhibition alleviates experimental peritoneal damage: potential therapeutic relevance for peritoneal dialysis

Vanessa Marchant1,2, Jorge García-Jiménez2,3, Guadalupe T González-Mateo4,5

  • 1Cellular and Molecular Biology in Renal and Vascular Pathology Laboratory, Health Research Institute-Fundación Jiménez Díaz University Hospital, Universidad Autónoma de Madrid (IIS-FJD, UAM), Madrid, Spain.

The Journal of Pathology
|August 14, 2025
PubMed

Insights

Stimulator of interferon genes (STING) pathway activation drives peritoneal membrane damage in patients undergoing peritoneal dialysis. Targeting STING may prevent dialysis failure and reduce peritoneal inflammation and fibrosis.

Area of Science:

  • Cellular and Molecular Biology
  • Immunology
  • Nephrology

Background:

  • Peritoneal dialysis (PD) is a vital kidney replacement therapy.
  • Long-term PD fluid exposure can cause peritoneal membrane damage, leading to ultrafiltration failure and PD discontinuation.
  • Understanding the molecular mechanisms of peritoneal damage is crucial for developing new therapeutic strategies.

Purpose of the Study:

  • To investigate the molecular mechanisms of peritoneal membrane damage induced by PD fluid.
  • To identify novel therapeutic targets for mitigating peritoneal deterioration in PD patients.

Main Methods:

  • RNA sequencing in a preclinical model of peritoneal injury induced by chlorhexidine (CHX) exposure.
  • Analysis of STING pathway components (STING, IRF3, ISGs, NF-κB) in experimental and human samples.
  • Studies in STING-deficient mice and pharmacological inhibition of STING.
  • In vitro experiments with activated macrophages and mesothelial cells.
  • Assessment of peritoneal inflammation, fibrosis, and adhesion in various injury models.

Main Results:

  • Cytosolic DNA-sensing signaling, particularly the STING pathway, was identified as a novel mechanism in peritoneal injury.
  • STING and its downstream effectors were upregulated in experimental peritoneal damage and in human PD biopsies.
  • STING deficiency reduced inflammation, fibrosis, mesothelial-to-mesenchymal transition (MMT), and improved membrane integrity in CHX-induced injury.
  • Pharmacological STING inhibition attenuated peritoneal inflammation.
  • STING blockade in macrophages inhibited MMT, suggesting a role in peritoneal fibrosis.
  • STING deficiency reduced inflammation in bacterial peritonitis and decreased adhesions in a postsurgical model.

Conclusions:

  • STING is a key mediator of peritoneal injury associated with PD.
  • Targeting the STING pathway offers a potential therapeutic strategy to prevent PD-associated ultrafiltration failure and peritoneal complications.

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