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Published on: June 13, 2013
miRNA15a regulates insulin signal transduction in the retinal vasculature
Youde Jiang1, Li Liu1, Jena J Steinle2
1Department of Anatomy and Cell Biology, Wayne State University School of Medicine, Detroit, MI, United States.
Abstract:
We previously reported that tumor necrosis factor alpha (TNFα) could inhibit insulin signal transduction in retinal cells. We recently found that miR15a/16 also reduced TNFα in retinal endothelial cells (REC) and in vascular specific miR15a/16 knockout mice. Since in silico programs suggested that miR15a could directly bind the insulin receptor, we wanted to determine whether miR15a altered insulin signal transduction. We used a luciferase-based binding assay to determine whether miR15a directly bound the insulin receptor. We then used Western blotting, ELISA, and qPCR to investigate whether miR15a altered insulin signaling proteins in REC and in both miR15a/16 endothelial cell knockout and overexpressing mice. We also treated some REC with resveratrol to determine if resveratrol could increase miR15a expression, since resveratrol is protective to the diabetic retina. We found that miR15a directly bound the 3'UTR of the insulin receptor. Treatment with resveratrol increased miR15a expression in REC grown in high glucose. While total insulin receptor levels were not altered, insulin signal transduction was reduced in REC grown in high glucose and was restored with treatment with resveratrol. miR15a knockout mice had reduced insulin receptor phosphorylation and Akt2 levels, with increased insulin receptor substrate 1 (IRS-1) phosphorylation on serine 307, a site known to inhibit insulin signaling. In contrast, overexpression of miR15a increased insulin signal transduction. Taken together, these data suggest that miR15a binds the insulin receptor and indirectly regulates insulin receptor actions. It also offers an additional mechanism by which resveratrol is protective to the diabetic retina.
Insights
MicroRNA-15a (miR15a) directly binds the insulin receptor, impacting insulin signaling in retinal cells. Resveratrol enhances miR15a, offering a protective mechanism against diabetic retinopathy.
Area of Science:
- Ophthalmology
- Molecular Biology
- Endocrinology
Background:
- Tumor necrosis factor alpha (TNFα) inhibits insulin signaling in retinal cells.
- MicroRNA-15a/16 (miR15a/16) reduces TNFα in retinal endothelial cells (REC) and in vivo.
- miR15a is predicted to bind the insulin receptor.
Purpose of the Study:
- To investigate if miR15a directly binds and alters insulin receptor signaling.
- To explore the role of miR15a in diabetic retinal conditions.
- To determine if resveratrol influences miR15a expression and insulin signaling.
Main Methods:
- Luciferase-based binding assay to confirm direct miR15a-insulin receptor interaction.
- Western blotting, ELISA, and qPCR to analyze insulin signaling proteins in REC and knockout/overexpressing mice.
- Treatment of REC with resveratrol under high glucose conditions.
Main Results:
- miR15a directly binds the 3'UTR of the insulin receptor.
- Resveratrol increased miR15a expression in high glucose conditions, restoring insulin signaling.
- miR15a knockout reduced insulin receptor phosphorylation and Akt2, increasing inhibitory IRS-1 phosphorylation; overexpression increased signaling.
Conclusions:
- miR15a directly binds the insulin receptor and indirectly regulates its actions.
- miR15a plays a significant role in modulating insulin signal transduction in the retina.
- Resveratrol's protective effects in diabetic retinopathy may involve increasing miR15a expression.
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