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.

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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