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Protective effect of Cyclo(His-Pro) on peritoneal fibrosis through regulation of HDAC3 expression
Ji Eun Kim1, Dohyun Han2, Kyu Hong Kim3
1Department of Internal Medicine, Korea University Guro Hospital, Seoul, Korea.
Insights
Cyclo(His-Pro) (CHP) peptide shows promise in preventing peritoneal fibrosis, a common complication of dialysis. CHP treatment reduced fibrosis and inflammation by modulating key proteins and improving mitochondrial function in a mouse model.
Area of Science:
- Nephrology
- Molecular Biology
- Biochemistry
Background:
- Peritoneal dialysis (PD) is a vital treatment for end-stage renal disease (ESRD).
- Peritoneal fibrosis (PF) and inflammation are significant complications that can lead to PD failure.
- Effective preventive strategies for PF are currently limited.
Purpose of the Study:
- To investigate the potential of Cyclo(His-Pro) (CHP), a cyclic dipeptide, in preventing peritoneal fibrosis.
- To elucidate the molecular mechanisms underlying CHP's effects on PF.
- To validate findings in both animal models and human mesothelial cells.
Main Methods:
- Induction of peritoneal fibrosis in a mouse model.
- Administration of CHP and subsequent quantitative proteomic analysis (LC-MS/MS).
- Validation in human primary cultured mesothelial cells, assessing fibrosis markers, HDAC3, Nrf2, FOXM1, and mitochondrial function.
Main Results:
- CHP administration significantly mitigated peritoneal fibrosis and inflammation in mice and human cells.
- CHP modulated the expression of histone deacetylase 3 (HDAC3) and its associated signaling pathways.
- CHP enhanced Nrf2 expression while suppressing FOXM1, improved mitochondrial function, and demonstrated immunomodulatory effects.
Conclusions:
- Cyclo(His-Pro) (CHP) demonstrates significant potential as a therapeutic agent to prevent peritoneal fibrosis in patients undergoing peritoneal dialysis.
- CHP exerts its protective effects by modulating HDAC3 expression, regulating fibrosis and inflammation markers, and enhancing mitochondrial function.
- Further research into CHP could lead to novel treatments for PD-related complications.
Abstract:
Peritoneal dialysis is a common treatment for end-stage renal disease, but complications often force its discontinuation. Preventive treatments for peritoneal inflammation and fibrosis are currently lacking. Cyclo(His-Pro) (CHP), a naturally occurring cyclic dipeptide, has demonstrated protective effects in various fibrotic diseases, yet its potential role in peritoneal fibrosis (PF) remains uncertain. In a mouse model of induced PF, CHP was administered, and quantitative proteomic analysis using liquid chromatography-tandem mass spectrometry was employed to identify PF-related protein signaling pathways. The results were further validated using human primary cultured mesothelial cells. This analysis revealed the involvement of histone deacetylase 3 (HDAC3) in the PF signaling pathway. CHP administration effectively mitigated PF in both peritoneal tissue and human primary cultured mesothelial cells, concurrently regulating fibrosis-related markers and HDAC3 expression. Moreover, CHP enhanced the expression of nuclear factor erythroid 2-related factor 2 (Nrf2) while suppressing forkhead box protein M1 (FOXM1), known to inhibit Nrf2 transcription through its interaction with HDAC3. CHP also displayed an impact on spleen myeloid-derived suppressor cells, suggesting an immunomodulatory effect. Notably, CHP improved mitochondrial function in peritoneal tissue, resulting in increased mitochondrial membrane potential and adenosine triphosphate production. This study suggests that CHP can significantly prevent PF in peritoneal dialysis patients by modulating HDAC3 expression and associated signaling pathways, reducing fibrosis and inflammation markers, and improving mitochondrial function.
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