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Surgical Techniques for Catheter Placement and 5/6 Nephrectomy in Murine Models of Peritoneal Dialysis
Published on: July 19, 2018
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.
Abstract:
Peritoneal dialysis (PD) is a widely used kidney replacement therapy for patients with end-stage kidney disease. Nevertheless, long-term exposure to PD fluid can damage the peritoneal membrane, leading to ultrafiltration failure and, ultimately, discontinuation of PD. Investigation of the molecular mechanisms underlying this damage is essential for identifying new therapeutic targets to mitigate peritoneal deterioration in PD patients. To this end, we employed RNA sequencing in a preclinical model of peritoneal injury, induced by prolonged chlorhexidine (CHX) exposure, which revealed cytosolic DNA-sensing signaling as a novel pathway. Next, we demonstrated that key players in this pathway, such as the stimulator of interferon genes (STING) and its downstream signaling effectors (interferon regulatory factor 3, interferon-stimulated genes, and nuclear factor-κB signaling), were upregulated in experimental peritoneal damage. Moreover, increased STING expression was observed in human peritoneal biopsies from patients with PD. Subsequent studies in STING-deficient mice showed reduced proinflammatory gene expression and immune cell infiltration, together with inhibited nuclear factor-κB pathway activation at both early (10 days) and late (30 days) stages of CHX-induced peritoneal injury. STING deficiency also reduced peritoneal membrane thickening, fibrosis, and mesothelial-to-mesenchymal transition (MMT)-related changes in advanced CHX-induced damage. Furthermore, pharmacological inhibition of STING with C-176 attenuated CHX-induced peritoneal inflammation. Macrophages were identified as one of the STING-expressing cell types in the injured peritoneum. Hence, in vitro STING blockade in activated macrophages inhibited MMT in cultured mesothelial cells, suggesting that STING activation in this population may drive peritoneal fibrosis. Additionally, STING deficiency reduced peritoneal inflammation in S. epidermidis-induced peritonitis and decreased adhesion scores in a postsurgical intra-abdominal adhesion model. These findings identify STING as a pivotal mediator of peritoneal injury and support its potential as a novel therapeutic target to prevent PD-associated ultrafiltration failure. © 2025 The Author(s). The Journal of Pathology published by John Wiley & Sons Ltd on behalf of The Pathological Society of Great Britain and Ireland.
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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