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Published on: July 19, 2018
Tamoxifen ameliorates peritoneal membrane damage by blocking mesothelial to mesenchymal transition in peritoneal
Jesús Loureiro1, Pilar Sandoval, Gloria del Peso
1Centro de Biología Molecular-Severo Ochoa, CSIC-UAM, Cantoblanco, Madrid, Spain.
Abstract:
Mesothelial-to-mesenchymal transition (MMT) is an auto-regulated physiological process of tissue repair that in uncontrolled conditions such as peritoneal dialysis (PD) can lead to peritoneal fibrosis. The maximum expression of peritoneal fibrosis induced by PD fluids and other peritoneal processes is the encapsulating peritoneal sclerosis (EPS) for which no specific treatment exists. Tamoxifen, a synthetic estrogen, has successfully been used to treat retroperitoneal fibrosis and EPS associated with PD. Hence, we used in vitro and animal model approaches to evaluate the efficacy of Tamoxifen to inhibit the MMT as a trigger of peritoneal fibrosis. In vitro studies were carried out using omentum-derived mesothelial cells (MCs) and effluent-derived MCs. Tamoxifen blocked the MMT induced by transforming growth factor (TGF)-β1, as it preserved the expression of E-cadherin and reduced the expression of mesenchymal-associated molecules such as snail, fibronectin, collagen-I, α-smooth muscle actin, and matrix metalloproteinse-2. Tamoxifen-treatment preserved the fibrinolytic capacity of MCs treated with TGF-β1 and decreased their migration capacity. Tamoxifen did not reverse the MMT of non-epitheliod MCs from effluents, but it reduced the expression of some mesenchymal molecules. In mice PD model, we demonstrated that MMT progressed in parallel with peritoneal membrane thickness. In addition, we observed that Tamoxifen significantly reduced peritoneal thickness, angiogenesis, invasion of the compact zone by mesenchymal MCs and improved peritoneal function. Tamoxifen also reduced the effluent levels of vascular endothelial growth factor and leptin. These results demonstrate that Tamoxifen is a therapeutic option to treat peritoneal fibrosis, and that its protective effect is mediated via modulation of the MMT process.
Insights
Tamoxifen effectively inhibits mesothelial-to-mesenchymal transition (MMT), a key driver of peritoneal fibrosis in peritoneal dialysis (PD). This study shows Tamoxifen reduces fibrosis and improves function in a PD mouse model, offering a potential therapeutic strategy.
Area of Science:
- Cell Biology
- Nephrology
- Pathology
Background:
- Mesothelial-to-mesenchymal transition (MMT) drives peritoneal fibrosis, a complication of peritoneal dialysis (PD).
- Encapsulating peritoneal sclerosis (EPS) is the severe manifestation of PD-induced peritoneal fibrosis, lacking effective treatments.
- Tamoxifen has shown promise in treating other fibrotic conditions.
Purpose of the Study:
- To evaluate Tamoxifen's efficacy in inhibiting MMT and preventing peritoneal fibrosis.
- To investigate Tamoxifen's mechanism of action on MMT in vitro and in vivo.
Main Methods:
- In vitro studies using omentum and effluent-derived mesothelial cells (MCs) treated with TGF-β1 and Tamoxifen.
- Animal model studies using mice undergoing PD to assess Tamoxifen's effects on peritoneal membrane structure and function.
Main Results:
- Tamoxifen blocked TGF-β1-induced MMT in vitro, preserving E-cadherin and reducing mesenchymal markers.
- Tamoxifen treatment preserved MC fibrinolytic capacity and decreased migration.
- In a mouse PD model, Tamoxifen reduced peritoneal thickness, angiogenesis, and improved peritoneal function, lowering VEGF and leptin levels.
Conclusions:
- Tamoxifen demonstrates therapeutic potential for treating peritoneal fibrosis by modulating MMT.
- The protective effects of Tamoxifen involve the inhibition of MMT and related fibrotic processes.
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