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Published on: June 27, 2017
MicroRNA-129-5p modulates epithelial-to-mesenchymal transition by targeting SIP1 and SOX4 during peritoneal dialysis
Abstract:
Peritoneal dialysis (PD) is the most readily feasible home-dialysis method for renal replacement therapy. However, repeated use of PD can lead to induction of mesothelial/epithelial-mesenchymal transition (MMT/EMT) and fibrosis, eventually leading to ultrafiltration failure and discontinuation of PD. MicroRNA-129-5p (miR-129-5p) is believed to be a potent downstream inhibitor of TGF-β1 in renal fibrosis, but the effect of miR-129-5p on MMT/EMT relevant to PD is unknown. In this study, as determined by microRNA array analysis and confirmed by northern blot analysis and real-time PCR, we demonstrate that miRNA-129-5p is decreased in mesothelial cells isolated from effluent of patients having PD for more than 6 months extending to several years compared with those who have undergone PD for less than 6 months. The decreased expression of miR-129-5p was accompanied with alterations in EMT-related genes and the expression of respective proteins in vivo. In addition, in in vitro studies we noted that the expression of E-cadherin and claudin-1 were significantly reduced with increased cell migration in HMrSV5, a human peritoneal mesothelial cell line (HPMC), treated with TGF-β1, whereas expression of vimentin, fibronectin and transcription factors SIP1 and SOX4 increased significantly, as assessed by real-time PCR, western blot analysis and immunofluorescence microscopy. Furthermore, alteration in EMT-related genes and proteins were reversed by overexpression of miR-129-5p. No effect was observed in cells treated with miR-negative control. Meanwhile, inhibition of SIP1 and SOX4 with their respective siRNA also could decrease the expression of EMT-related genes and protein levels in HPMCs induced with TGF-β1. Finally, we demonstrate that SIP1 can inhibit the promoter activity of E-cadherin while enhancing the promoter activity of vimentin. We also observed that miR-129-5p could directly target the 3'UTR of SIP1 and SOX4 genes, and repressed their post-transcriptional activities. These data suggest that there is a novel TGF-β1/miR-129-5p/SIP-1 or SOX4 pathway that has a significant role in MMT and fibrosis in the setting of PD.
Insights
MicroRNA-129-5p (miR-129-5p) is decreased in patients undergoing long-term peritoneal dialysis (PD), contributing to fibrosis. Restoring miR-129-5p levels can reverse this process, offering a potential therapeutic target for PD-related complications.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Peritoneal dialysis (PD) is a crucial home-based renal replacement therapy.
- Long-term PD can induce mesothelial-epithelial-mesenchymal transition (MMT/EMT) and fibrosis, leading to treatment failure.
- The role of microRNA-129-5p (miR-129-5p) in PD-associated MMT/EMT and fibrosis is not well understood.
Purpose of the Study:
- To investigate the expression and function of miR-129-5p in peritoneal mesothelial cells during PD.
- To elucidate the molecular mechanisms underlying miR-129-5p's role in TGF-β1-induced MMT/EMT and fibrosis in PD patients.
Main Methods:
- MicroRNA array analysis, northern blot, and real-time PCR to assess miR-129-5p expression in patient samples.
- In vitro studies using human peritoneal mesothelial cells (HPMCs) treated with TGF-β1.
- Analysis of EMT markers (E-cadherin, vimentin, fibronectin), transcription factors (SIP1, SOX4), and gene/protein expression via real-time PCR, western blot, and immunofluorescence.
- Overexpression and inhibition studies of miR-129-5p, SIP1, and SOX4.
Main Results:
- miR-129-5p expression was significantly decreased in mesothelial cells from long-term PD patients compared to short-term patients.
- TGF-β1 treatment induced EMT markers and increased cell migration in HPMCs, which was reversed by miR-129-5p overexpression.
- miR-129-5p directly targets and represses the post-transcriptional activity of SIP1 and SOX4.
- Inhibition of SIP1 and SOX4 attenuated TGF-β1-induced EMT in HPMCs.
Conclusions:
- A novel TGF-β1/miR-129-5p/SIP1 or SOX4 pathway is implicated in MMT and fibrosis in peritoneal dialysis.
- Decreased miR-129-5p expression is a key event in PD-associated fibrosis.
- Modulating this pathway holds potential for therapeutic intervention in PD complications.
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