Inhibition of miRNA-155 Alleviates High Glucose-Induced Podocyte Inflammation by Targeting SIRT1 in Diabetic Mice
Xiaolei Wang1, Yanbin Gao2,3, Wenming Yi1
1Department of Endocrinology, Dongfang Hospital, Beijing University of Chinese Medicine, 6 Fangxingyuan, Fengtai District, Beijing, China.
Objective:
Microinflammation plays a crucial role in podocyte dysfunction in diabetic nephropathy, but its regulatory mechanism is still unclear. This study is aimed at discussing the mechanisms underlying the effect of miRNA-155 on podocyte injury to determine its potential as a therapeutic target.
Methods:
Cultured immortalized mouse podocytes and diabetic KK-Ay mice models were treated with a miR-155 inhibitor. Western blotting, real-time PCR, ELISA, immunofluorescence, and Luciferase reporter assay were used to analyze markers of inflammation cytokines and podocyte injury.
Results:
miRNA-155 was found to be highly expressed in serum and kidney tissue of mice with diabetic nephropathy and in cultured podocytes, accompanied by elevated levels of inflammatory factors. Inhibition of miRNA-155 can reduce proteinuria and ACR levels, diminish the secretion of inflammatory molecules, improve kidney function, inhibit podocyte foot fusion, and reverse renal pathological changes in diabetic nephropathy mice. Overexpression of miRNA-155 in vitro can increase inflammatory molecule production in podocytes and aggravates podocyte injury, while miRNA-155 inhibition suppresses inflammatory molecule production in podocytes and reduces podocyte injury. A luciferase assay confirmed that miRNA-155 could selectively bind to 3'-UTR of SIRT1, resulting in decreased SIRT1 expression. In addition, SIRT1 siRNA could offset SIRT1 upregulation and enhance inflammatory factor secretion in podocytes, induced by the miRNA-155 inhibitor.
Conclusions:
These findings strongly support the hypothesis that miRNA-155 inhibits podocyte inflammation and reduces podocyte injury through SIRT1 silencing. miRNA-155 suppression therapy may be useful for the management of diabetic nephropathy.
Insights
MicroRNA-155 inhibition reduces inflammation and podocyte injury in diabetic nephropathy by targeting SIRT1. This suggests miRNA-155 suppression therapy may effectively manage diabetic kidney disease.
Area of Science:
- Nephrology
- Molecular Biology
- Genetics
Background:
- Microinflammation is a key factor in podocyte dysfunction in diabetic nephropathy.
- The precise regulatory mechanisms of podocyte injury in this condition remain unclear.
- Identifying therapeutic targets is crucial for managing diabetic nephropathy.
Purpose of the Study:
- To investigate the role of microRNA-155 (miRNA-155) in podocyte injury.
- To elucidate the underlying mechanisms of miRNA-155's effect on podocyte dysfunction.
- To assess the therapeutic potential of targeting miRNA-155 in diabetic nephropathy.
Main Methods:
- Utilized cultured mouse podocytes and a diabetic KK-Ay mouse model.
- Administered a miRNA-155 inhibitor to study its effects.
- Employed Western blotting, real-time PCR, ELISA, immunofluorescence, and luciferase reporter assays to analyze inflammatory markers and podocyte injury.
Main Results:
- Found elevated miRNA-155 levels in diabetic nephropathy serum and kidney tissue, correlating with increased inflammatory factors.
- miRNA-155 inhibition reduced proteinuria, improved kidney function, and ameliorated podocyte injury and renal pathology in mice.
- Confirmed miRNA-155 targets SIRT1, and its inhibition suppressed inflammatory molecule production in podocytes.
Conclusions:
- miRNA-155 inhibition mitigates podocyte inflammation and injury by silencing SIRT1.
- miRNA-155 suppression presents a promising therapeutic strategy for diabetic nephropathy management.
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