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Anti-inflammatory microRNA-146a protects mice from diet-induced metabolic disease
Marah C Runtsch1, Morgan C Nelson1, Soh-Hyun Lee1
1Department of Pathology, University of Utah, Salt Lake City, Utah, United States of America.
Abstract:
Identifying regulatory mechanisms that influence inflammation in metabolic tissues is critical for developing novel metabolic disease treatments. Here, we investigated the role of microRNA-146a (miR-146a) during diet-induced obesity in mice. miR-146a is reduced in obese and type 2 diabetic patients and our results reveal that miR-146a-/- mice fed a high-fat diet (HFD) have exaggerated weight gain, increased adiposity, hepatosteatosis, and dysregulated blood glucose levels compared to wild-type controls. Pro-inflammatory genes and NF-κB activation increase in miR-146a-/- mice, indicating a role for this miRNA in regulating inflammatory pathways. RNA-sequencing of adipose tissue macrophages demonstrated a role for miR-146a in regulating both inflammation and cellular metabolism, including the mTOR pathway, during obesity. Further, we demonstrate that miR-146a regulates inflammation, cellular respiration and glycolysis in macrophages through a mechanism involving its direct target Traf6. Finally, we found that administration of rapamycin, an inhibitor of mTOR, was able to rescue the obesity phenotype in miR-146a-/- mice. Altogether, our study provides evidence that miR-146a represses inflammation and diet-induced obesity and regulates metabolic processes at the cellular and organismal levels, demonstrating how the combination of diet and miRNA genetics influences obesity and diabetic phenotypes.
Insights
MicroRNA-146a (miR-146a) deficiency worsens diet-induced obesity and inflammation. Restoring its function may offer new strategies for treating obesity and related metabolic diseases.
Area of Science:
- Biochemistry
- Immunology
- Genetics
Background:
- Inflammation in metabolic tissues is key to metabolic diseases.
- MicroRNA-146a (miR-146a) levels are reduced in obesity and type 2 diabetes.
Purpose of the Study:
- Investigate the role of miR-146a in diet-induced obesity.
- Elucidate miR-146a's regulatory mechanisms in inflammation and metabolism.
Main Methods:
- Utilized miR-146a knockout (miR-146a-/-) and wild-type mice fed a high-fat diet (HFD).
- Performed RNA-sequencing on adipose tissue macrophages.
- Analyzed inflammatory gene expression, NF-κB activation, and metabolic pathways (mTOR, glycolysis, cellular respiration).
- Administered rapamycin (an mTOR inhibitor) to assess phenotypic rescue.
Main Results:
- miR-146a-/- mice exhibited exacerbated weight gain, adiposity, hepatosteatosis, and glucose dysregulation on HFD.
- Pro-inflammatory gene expression and NF-κB activation were increased in miR-146a-/- mice.
- miR-146a regulates macrophage inflammation, metabolism, mTOR pathway, cellular respiration, and glycolysis via Traf6.
- Rapamycin treatment rescued the obesity phenotype in miR-146a-/- mice.
Conclusions:
- miR-146a acts as a crucial repressor of inflammation and diet-induced obesity.
- This microRNA modulates cellular and organismal metabolic processes.
- Diet and microRNA genetics interact to influence obesity and diabetic phenotypes.
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