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Mmu-miR-664-5p contributes to high glucose-induced MPC5 podocyte injury via its target RUNX3
Yanli Jiang1, Wenhong Liu2, Diyi Zhou3
1The Second School of Clinical Medicine, Zhejiang Chinese Medical University, No. 548 Binwen Road, Binjiang District, Hangzhou, Zhejiang 310053, China.
Abstract:
As a predominant contributor to end-stage renal disease, diabetic nephropathy (DN) progression is critically influenced by podocyte impairment, which serves as a pivotal determinant in the initiation of proteinuria and subsequent renal functional decline. MicroRNAs (miRNAs) act as key post-transcriptional regulators that modulate target gene expression through mRNA degradation and/or translational repression. Previous studies have demonstrated that the upregulation of human runt-associated transcription factor 3 (RUNX3) suppresses the epithelial-to-mesenchymal transition (EMT) in renal tubular epithelial cells in DN. But, the role of RUNX3 in podocyte-specific EMT and its regulation by miRNAs has not been comprehensively explored. This study aimed to investigate whether the microRNA mmu-miR-664-5p contributes to high glucose (HG)-induced podocyte injury by targeting RUNX3 and to determine if Shenxiao decoction (SXD) exerts its protective effect through this pathway. We found that HG significantly upregulates mmu-miR-664-5p, which directly binds to the 3' UTR of RUNX3 mRNA. Inhibition of mmu-miR-664-5p in HG-induced mouse podocyte clone-5 (MCP5) enhanced cell viability, reduced apoptosis, migration, and invasion, and reversed EMT marker expression. We further discovered that SXD-containing serum (SCS), counteracts HG-induced podocyte EMT by downregulating mmu-miR-664-5p and restoring RUNX3. Conversely, adding exogenous miR-664-5p mimetic to SCS-treated HG media reversed these protective effects. In conclusion, mmu-miR-664-5p promoted the EMT effect of MPC5 podocytes in HG medium by targeting RUNX3, and SXD mitigates this process through its inhibition of miR-664-5p, collectively highlighting the mmu-miR-664-5p/RUNX3 axis as a prospective target for therapeutic intervention in DN.
Insights
High glucose induces podocyte injury and epithelial-to-mesenchymal transition (EMT) via miR-664-5p targeting RUNX3. Shenxiao decoction (SXD) protects against diabetic nephropathy (DN) by inhibiting this pathway.
Area of Science:
- Nephrology
- Molecular Biology
- Genetics
Background:
- Diabetic nephropathy (DN) is a leading cause of end-stage renal disease, with podocyte injury being a critical factor.
- MicroRNAs (miRNAs) regulate gene expression post-transcriptionally and are implicated in DN pathogenesis.
- The role of RUNX3 in podocyte epithelial-to-mesenchymal transition (EMT) and its miRNA regulation in DN remain unclear.
Purpose of the Study:
- To investigate if mmu-miR-664-5p targets RUNX3, contributing to high glucose (HG)-induced podocyte injury.
- To determine if Shenxiao decoction (SXD) exerts protective effects against DN via the mmu-miR-664-5p/RUNX3 pathway.
Main Methods:
- Utilized mouse podocyte clone-5 (MCP5) cells exposed to high glucose (HG).
- Assessed the effect of mmu-miR-664-5p inhibition/mimicry on podocyte viability, apoptosis, migration, invasion, and EMT markers.
- Investigated the impact of SXD-containing serum (SCS) on HG-induced podocyte injury and the mmu-miR-664-5p/RUNX3 axis.
Main Results:
- HG significantly upregulated mmu-miR-664-5p, which directly bound to RUNX3 mRNA, promoting podocyte EMT.
- Inhibiting mmu-miR-664-5p enhanced cell viability, reduced apoptosis, and reversed EMT markers in HG-treated podocytes.
- SXD-containing serum (SCS) counteracted HG-induced podocyte EMT by downregulating mmu-miR-664-5p and restoring RUNX3 levels.
Conclusions:
- mmu-miR-664-5p promotes podocyte EMT in diabetic nephropathy by targeting RUNX3.
- Shenxiao decoction (SXD) mitigates DN progression by inhibiting the mmu-miR-664-5p/RUNX3 pathway.
- The mmu-miR-664-5p/RUNX3 axis represents a potential therapeutic target for diabetic nephropathy.
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