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Updated: Oct 6, 2025

MicroRNA In situ Hybridization for Formalin Fixed Kidney Tissues
Published on: November 30, 2013
MicroRNA-494-3p Exacerbates Renal Epithelial Cell Dysfunction by Targeting SOCS6 under High Glucose Treatment
Xianjun Xue1, Minjie Liu1, Yulu Wang1
1Department of Nephrology, Puyang Oilfeld General Hospital, Puyang, China.
Background:
Diabetic nephropathy is a common complication of the kidneys induced by diabetes and is the main cause of end-stage renal disease. MicroRNA-494-3p was reported to be upregulated in renal tissues collected from db/db mice, but its specific role in diabetic nephropathy was still unclear. This study aimed to explore the effect of miR-494-3p on renal fibrosis using an in vitro cell model of diabetic nephropathy.
Methods:
After human renal tubular epithelial cells (HK-2) were treated with high glucose (HG), the viability and apoptosis of cells were examined by CCK-8 assays and flow cytometry analyses. Additionally, protein levels of fibronectin, collagen I, collagen III, collagen IV, and epithelial-mesenchymal transition (EMT) markers in HG-induced HK-2 cells were quantified by Western blotting. miR-494-3p expression in HK-2 cells was detected by reverse-transcription quantitative polymerase chain reaction. The binding relation between miR-494-3p and the messenger RNA suppressor of cytokine signaling 6 (SOCS6) was detected by luciferase reporter assays.
Results:
HG reduced cell viability and enhanced cell apoptosis in a time- or concentration-dependent manner. Additionally, HG induced collagen accumulation and triggered the EMT process. miR-494-3p was upregulated in HG-treated HK-2 cells. miR-494-3p inhibition alleviated HG-induced cell dysfunction. Mechanistically, miR-494-3p bound with SOCS6 and negatively regulated SOCS6 expression. Moreover, silencing SOCS6 rescued the suppressive effect of miR-499-5p inhibition on HG-induced cell dysfunction.
Conclusion:
miR-494-3p aggravates renal fibrosis, EMT process, and cell apoptosis by targeting SOCS6, suggesting that the miR-494-3p/SOCS6 axis may become a potential strategy for the treatment of diabetic nephropathy.
Insights
MicroRNA-494-3p worsens diabetic kidney disease by targeting SOCS6, leading to fibrosis and cell death. Inhibiting this microRNA may offer a new treatment strategy for diabetic nephropathy.
Area of Science:
- Nephrology
- Molecular Biology
- Biochemistry
Background:
- Diabetic nephropathy is a leading cause of end-stage renal disease.
- MicroRNA-494-3p is upregulated in diabetic kidney disease but its role is unclear.
- This study investigates miR-494-3p's effect on renal fibrosis in a diabetic nephropathy model.
Purpose of the Study:
- To explore the role of microRNA-494-3p in renal fibrosis.
- To investigate the mechanism by which miR-494-3p affects diabetic nephropathy.
- To identify potential therapeutic targets for diabetic nephropathy.
Main Methods:
- Human renal tubular epithelial cells (HK-2) were treated with high glucose (HG).
- Cell viability, apoptosis, and protein levels of fibronectin, collagen I, III, IV, and EMT markers were assessed.
- miR-494-3p expression and its binding with SOCS6 were analyzed using RT-qPCR and luciferase reporter assays.
Main Results:
- High glucose reduced cell viability, increased apoptosis, induced collagen accumulation, and triggered epithelial-mesenchymal transition (EMT).
- miR-494-3p was upregulated in HG-treated cells and its inhibition alleviated cell dysfunction.
- miR-494-3p targets SOCS6, negatively regulating its expression; SOCS6 silencing rescued the protective effect of miR-494-3p inhibition.
Conclusions:
- miR-494-3p exacerbates renal fibrosis, EMT, and apoptosis by targeting SOCS6.
- The miR-494-3p/SOCS6 axis represents a potential therapeutic strategy for diabetic nephropathy.
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