Related Experiment Video
Updated: Mar 9, 2026

Detection of microRNA Expression in Peritoneal Membrane of Rats Using Quantitative Real-time PCR
Published on: June 27, 2017
Inhibition of NF-kappaB with Dehydroxymethylepoxyquinomicin modifies the function of human peritoneal mesothelial
Patrycja Sosińska1, Ewa Baum2, Beata Maćkowiak1
1Department of Pathophysiology, Poznań University of Medical Sciences Poznań, Poland.
Abstract:
Peritoneal mesothelial cells exposed to bioincompatible dialysis fluids contribute to damage of the peritoneum during chronic dialysis. Inflammatory response triggered in the mesothelium leading to neovascularization and fibrosis plays an important role in that process. We studied the effects of Dehydroxymethyepoxyquinmicin (DHMEQ)-an NF-κB inhibitor on function of human peritoneal mesothelial cells (HPMC) in in vitro culture. DHMEQ studied in concentrations of 1-10 µg/ml was not toxic to HPMC. Synthesis of IL-6, MCP-1 and hyaluronan in unstimulated and stimulated with interleukin-1 (100 pg/ml) HPMC was inhibited in the presence of DHMEQ and the effect was proportional to the dose of the drug. DHMEQ (10 µg/ml) reduced in unstimulated HPMC synthesis of IL-6 (-55%), MCP-1 (-58%) and hyaluronan (-41%). Respective values for stimulated HMPC were: -63% for IL-6, -57% for MCP-1 and -67% for hyaluronan. The observed effects were due to the suppression of the expression of genes responsible for the synthesis of these molecules. DHMEQ modified the effects of the effluent dialysates from CAPD patients on the function of HMPC. Dialysate induced accelerated growth of these cells, and synthesis of collagen was inhibited in the presence of DHMEQ 10 µg/ml, by 69% and 40%, respectively. The results of our study show that DHMEQ effectively reduces inflammatory response in HMPC and prevents excessive dialysate induced proliferation and collagen synthesis in these cells. All of these effects may be beneficial during chronic peritoneal dialysis and prevents progressive dialysis-induced damage to the peritoneum.
Insights
Dehydroxymethyepoxyquinmicin (DHMEQ), an NF-κB inhibitor, reduces inflammation and prevents peritoneal cell damage during dialysis. This compound effectively inhibits inflammatory markers and collagen synthesis in human peritoneal mesothelial cells (HPMC).
Area of Science:
- Nephrology
- Cell Biology
- Pharmacology
Background:
- Bioincompatible dialysis fluids cause peritoneal damage during chronic dialysis.
- Inflammatory responses, neovascularization, and fibrosis in mesothelial cells contribute to this damage.
Purpose of the Study:
- To investigate the effects of Dehydroxymethyepoxyquinmicin (DHMEQ), an NF-κB inhibitor, on human peritoneal mesothelial cells (HPMC) in vitro.
- To evaluate DHMEQ's potential to mitigate dialysis-induced peritoneal injury.
Main Methods:
- Human peritoneal mesothelial cells (HPMC) were cultured in vitro and treated with varying concentrations of DHMEQ (1-10 µg/ml).
- Cells were either unstimulated or stimulated with interleukin-1.
- Synthesis of IL-6, MCP-1, hyaluronan, and collagen was measured.
- Gene expression related to these molecules was analyzed.
- Effects of CAPD patient effluent dialysates on HPMC function were assessed with and without DHMEQ.
Main Results:
- DHMEQ was not toxic to HPMC at studied concentrations.
- DHMEQ significantly inhibited the synthesis of IL-6, MCP-1, and hyaluronan in both unstimulated and stimulated HPMC, with dose-dependent effects.
- DHMEQ suppressed the expression of genes responsible for IL-6, MCP-1, and hyaluronan synthesis.
- DHMEQ inhibited dialysate-induced HPMC proliferation and collagen synthesis.
Conclusions:
- DHMEQ effectively reduces the inflammatory response in HPMC.
- DHMEQ prevents excessive proliferation and collagen synthesis in HPMC induced by dialysis effluent.
- DHMEQ demonstrates potential therapeutic benefits for preventing progressive dialysis-induced peritoneal damage.
More Related Videos
07:15Mechanism of Kemeng Fang's Inhibition of Podocyte Apoptosis in Rats with Membranous Nephropathy through the PI3K/AKT Signaling Pathway
Published on: August 23, 2024
13:38Synthesis and Characterization of an Aspirin-fumarate Prodrug that Inhibits NFκB Activity and Breast Cancer Stem Cells
Published on: January 18, 2017