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MiR-320a induces diabetic nephropathy via inhibiting MafB
Mengying He1, Jin Wang1, Zhongwei Yin1
1, 430030, Division of Cardiology and Hubei Key Laboratory of Genetics and Molecular Mechanisms of Cardiological Disorders, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.
Abstract:
Multiple studies indicate that microRNAs (miRNAs) are involved in diabetes. However, the roles of miRNA in the target organ damages in diabetes remain unclear. This study investigated the functions of miR-320a in diabetic nephropathy (DN). In this study, db/db mice were used to observe the changes in podocytes and their function in vivo, as well as in cultured mouse podocyte cells (MPC5) exposed to high glucose in vitro. To further explore the role of miR-320a in DN, recombinant adeno-associated viral particle was administered intravenously to manipulate the expression of miR-320a in db/db mice. Overexpression of miR-320a markedly promoted podocyte loss and dysfunction in DN, including mesangial expansion and increased levels of proteinuria, serum creatinine and urea nitrogen. Furthermore, MafB was identified as a direct target of miR-320a through AGO2 co-immunoprecipitation, luciferase reporter assay, and Western blotting. Moreover, re-expression of MafB rescued miR-320a-induced podocyte loss and dysfunction by upregulating the expressions of Nephrin and glutathione peroxidase 3 (Gpx3). Our data indicated that miR-320a aggravated renal disfunction in DN by targeting MafB and downregulating Nephrin and Gpx3 in podocytes, which suggested that miR-320a could be a potential therapeutic target of diabetic nephropathy.
Insights
MicroRNA-320a worsens diabetic nephropathy by harming kidney podocytes. Targeting miR-320a may offer a new treatment strategy for diabetic kidney disease.
Area of Science:
- Molecular biology
- Endocrinology
- Nephrology
Background:
- MicroRNAs (miRNAs) are implicated in diabetes, but their specific roles in diabetic organ damage, particularly diabetic nephropathy (DN), are not fully understood.
- This study focuses on the function of miR-320a in the context of DN, examining its impact on podocytes, crucial cells for kidney filtration.
Discussion:
- Overexpression of miR-320a in db/db mice and high-glucose-treated podocytes led to significant podocyte loss and dysfunction.
- miR-320a was found to directly target MafB, a transcription factor involved in podocyte health.
- Downregulation of Nephrin and glutathione peroxidase 3 (Gpx3) by miR-320a further contributed to renal dysfunction.
Key Insights:
- miR-320a promotes podocyte injury and dysfunction in diabetic nephropathy.
- MafB acts as a direct target of miR-320a, and its re-expression can mitigate miR-320a-induced damage.
- The miR-320a/MafB pathway influences the expression of key podocyte markers like Nephrin and Gpx3.
Outlook:
- miR-320a emerges as a potential therapeutic target for mitigating kidney damage in diabetic nephropathy.
- Further research could explore strategies to inhibit miR-320a for the treatment of DN.
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