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Comparison of Cardiac miRNA Transcriptomes Induced by Diabetes and Rapamycin Treatment and Identification of a
Anthony M Belenchia1,2, Madhavi P Gavini3, Ryan G Toedebusch1,4
1Dalton Cardiovascular Research Center, University of Missouri, Columbia, MO, USA.
Abstract:
Rapamycin (Rap), an inhibitor of mTORC1, reduces obesity and improves lifespan in mice. However, hyperglycemia and lipid disorders are adverse side effects in patients receiving Rap treatment. We previously reported that diabetes induces pansuppression of cardiac cytokines in Zucker obese rats (ZO-C). Rap treatment (750 μg/kg/day for 12 weeks) reduced their obesity and cardiac fibrosis significantly; however, it increased their hyperglycemia and did not improve their cardiac diastolic parameters. Moreover, Rap treatment of healthy Zucker lean rats (ZL-C) induced cardiac fibrosis. Rap-induced changes in ZL-C's cardiac cytokine profile shared similarities with that of diabetes-induced ZO-C. Therefore, we hypothesized that the cardiac microRNA transcriptome induced by diabetes and Rap treatment could share similarities. Here, we compared the cardiac miRNA transcriptome of ZL-C to ZO-C, Rap-treated ZL (ZL-Rap), and ZO (ZO-Rap). We report that 80% of diabetes-induced miRNA transcriptome (40 differentially expressed miRNAs by minimum 1.5-fold in ZO-C versus ZL-C; p ≤ 0.05) is similar to 47% of Rap-induced miRNA transcriptome in ZL (68 differentially expressed miRNAs by minimum 1.5-fold in ZL-Rap versus ZL-C; p ≤ 0.05). This remarkable similarity between diabetes-induced and Rap-induced cardiac microRNA transcriptome underscores the role of miRNAs in Rap-induced insulin resistance. We also show that Rap treatment altered the expression of the same 17 miRNAs in ZL and ZO hearts indicating that these 17 miRNAs comprise a unique Rap-induced cardiac miRNA signature. Interestingly, only four miRNAs were significantly differentially expressed between ZO-C and ZO-Rap, indicating that, unlike the nondiabetic heart, Rap did not substantially change the miRNA transcriptome in the diabetic heart. In silico analyses showed that (a) mRNA-miRNA interactions exist between differentially expressed cardiac cytokines and miRNAs, (b) human orthologs of rat miRNAs that are strongly correlated with cardiac fibrosis may modulate profibrotic TGF-β signaling, and (c) changes in miRNA transcriptome caused by diabetes or Rap treatment include cardioprotective miRNAs indicating a concurrent activation of an adaptive mechanism to protect the heart in conditions that exacerbate diabetes.
Insights
Rapamycin treatment impacts cardiac microRNA profiles similarly to diabetes, affecting insulin resistance and fibrosis. This study identifies a unique Rapamycin-induced cardiac miRNA signature, highlighting potential adaptive mechanisms in the heart.
Area of Science:
- Cardiovascular Biology
- Molecular Endocrinology
- Metabolic Disease Research
Background:
- Rapamycin (Rap), an mTORC1 inhibitor, offers benefits like reduced obesity but causes adverse effects such as hyperglycemia and lipid disorders.
- Previous research indicated diabetes induces cardiac cytokine suppression in Zucker obese rats (ZO-C).
- Rap treatment in Zucker lean rats (ZL-C) induced cardiac fibrosis, with altered cytokine profiles similar to diabetic ZO-C.
Purpose of the Study:
- To investigate the hypothesis that cardiac microRNA transcriptomes induced by diabetes and Rap treatment share similarities.
- To compare the cardiac miRNA transcriptome in Zucker lean control (ZL-C), Zucker obese control (ZO-C), Rap-treated Zucker lean (ZL-Rap), and Rap-treated Zucker obese (ZO-Rap) rats.
Main Methods:
- Comparative analysis of cardiac microRNA transcriptomes across four groups of rats: ZL-C, ZO-C, ZL-Rap, and ZO-Rap.
- Utilized differential expression analysis (minimum 1.5-fold change, p ≤ 0.05) to identify significant miRNA changes.
- Performed in silico analyses to predict mRNA-miRNA interactions, associations with cardiac fibrosis, and potential signaling pathway involvement (e.g., TGF-β).
Main Results:
- A significant overlap (80%) was observed between diabetes-induced and Rap-induced cardiac miRNA alterations.
- Rapamycin treatment induced a unique cardiac miRNA signature (17 differentially expressed miRNAs) in both lean and obese rats.
- Rapamycin had a minimal impact on the miRNA transcriptome in the diabetic heart compared to the non-diabetic heart.
Conclusions:
- The shared miRNA transcriptome alterations between diabetes and Rapamycin underscore the role of miRNAs in Rapamycin-induced insulin resistance.
- Rapamycin-induced cardiac fibrosis may be linked to modulation of profibrotic signaling pathways via specific miRNAs.
- Both diabetes and Rapamycin trigger changes in cardioprotective miRNAs, suggesting an adaptive cardiac response.
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