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miR-146a-Mediated extracellular matrix protein production in chronic diabetes complications
Biao Feng1, Shali Chen, Kara McArthur
1Department of Pathology, Schulich School of Medicine and Dentistry and the University of Western Ontario, London, Ontario, Canada.
Objective:
MicroRNAs (miRNAs), through transcriptional regulation, modulate several cellular processes. In diabetes, increased extracellular matrix protein fibronectin (FN) production is known to occur through histone acetylator p300. Here, we investigated the role of miR-146a, an FN-targeting miRNA, on FN production in diabetes and its relationship with p300.
Research Design And Methods:
miR-146a expressions were measured in endothelial cells from large vessels and retinal microvessels in various glucose levels. FN messenger RNA expression and protein levels with or without miR-146a mimic or antagomir transfection were examined. A luciferase assay was performed to detect miR-146a's binding to FN 3'-untranslated region (UTR). Likewise, retinas from type 1 diabetic rats were studied with or without an intravitreal injection of miR-146a mimic. In situ hybridization was used to localize retinal miR-146a. Cardiac and renal tissues were analyzed from type 1 and type 2 diabetic animals.
Results:
A total of 25 mmol/L glucose decreased miR-146a expression and increased FN expression compared with 5 mmol/L glucose in both cell types. miR-146a mimic transfection prevented such change, whereas miR-146a antagomir transfection in the cells in 5 mmol/L glucose caused FN upregulation. A luciferase assay confirmed miR-146a's binding to FN 3'-UTR. miR-146a was localized in the retinal endothelial cells and was decreased in diabetes. Intravitreal miR-146a mimic injection restored retinal miR-146a and decreased FN in diabetes. Additional experiments showed that p300 regulates miR-146a. Similar changes were seen in the retinas, kidneys, and hearts in type 1 and type 2 diabetic animals.
Conclusions:
These studies showed a novel, glucose-induced molecular mechanism in which miR-146a participates in the transcriptional circuitry regulating extracellular matrix protein production in diabetes.
Insights
In diabetes, high glucose lowers miR-146a, increasing fibronectin (FN) production. Restoring miR-146a reduces FN, revealing a novel glucose-induced mechanism in diabetic complications.
Area of Science:
- Molecular Biology
- Endocrinology
- Diabetic Complications Research
Background:
- MicroRNAs (miRNAs) regulate cellular processes via transcriptional control.
- Diabetes is associated with increased extracellular matrix protein fibronectin (FN) production, partly mediated by histone acetylator p300.
Purpose of the Study:
- To investigate the role of miR-146a, an FN-targeting miRNA, in FN production in diabetes.
- To explore the relationship between miR-146a, FN, and p300 in diabetic conditions.
Main Methods:
- Measured miR-146a and FN expression in endothelial cells under varying glucose levels.
- Utilized miR-146a mimic/antagomir transfection and luciferase assays to confirm miRNA-target interaction.
- Analyzed retinas, kidneys, and hearts from diabetic rat models with and without miR-146a mimic injection.
Main Results:
- High glucose (25 mmol/L) decreased miR-146a and increased FN expression.
- miR-146a mimic transfection reversed high glucose-induced FN upregulation; antagomir caused FN increase.
- miR-146a targets FN 3'-UTR, and its levels are reduced in diabetic retinas, kidneys, and hearts.
- p300 was found to regulate miR-146a expression.
Conclusions:
- A novel, glucose-induced molecular mechanism involving miR-146a in regulating extracellular matrix protein production in diabetes was identified.
- miR-146a acts as a key player in the transcriptional circuitry controlling fibronectin in diabetic tissues.
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