Inhibition of miR-181c-5p Rescues Diabetes-Impaired Angiogenesis in Ischemia and Wound Healing

Emma L Solly1,2, Yingjun Luo3, Khalia R Primer1,2

  • 1Vascular Research Centre, Lifelong Health Theme, South Australian Health and Medical Research Institute, Adelaide, South Australia, Australia.

Diabetes
|March 31, 2026
PubMed

Insights

Inhibiting microRNA-181c-5p (miR-181c-5p) improves blood flow and wound healing in diabetic mice by promoting angiogenesis. This finding suggests miR-181c-5p inhibition is a potential therapy for diabetic vascular complications.

Area of Science:

  • Vascular Biology
  • Molecular Medicine
  • Diabetes Research

Background:

  • Diabetic vascular complications involve impaired angiogenesis and wound healing.
  • MicroRNAs (miRNAs) are implicated in various diseases.
  • The role of miRNA-181c-5p in diabetes was previously unknown.

Purpose of the Study:

  • To investigate the role of miRNA-181c-5p in diabetes-related vascular complications.
  • To determine if inhibiting miRNA-181c-5p can improve angiogenesis and wound healing in diabetic models.
  • To elucidate the molecular mechanisms underlying these effects.

Main Methods:

  • Utilized streptozotocin-induced diabetic mouse models for hindlimb ischemia and wound healing.
  • Administered miRNA-181c-5p inhibitors (anti-miR-181c-5p) and control inhibitors.
  • Performed in vitro endothelial cell assays (tubule formation, migration).
  • Analyzed protein and mRNA expression (VEGFA, VEGFR2, ERK2, Bcl2, Elmo3, Trib1).
  • Conducted whole-transcriptome sequencing and luciferase assays.

Main Results:

  • Inhibition of miRNA-181c-5p improved blood flow reperfusion and arteriolar density in diabetic hindlimb ischemia.
  • miRNA-181c-5p inhibition accelerated wound closure and increased capillary density in diabetic mice.
  • In vitro, anti-miR-181c-5p enhanced endothelial cell function under high-glucose conditions.
  • Mechanistically, inhibition upregulated VEGFA, VEGFR2, ERK2 phosphorylation, Bcl2, Elmo3, and Trib1.
  • VEGFA was identified as a direct target, while ERK2, Elmo3, and Trib1 are indirectly regulated.

Conclusions:

  • miRNA-181c-5p inhibition effectively promotes angiogenesis and vascular repair in diabetes.
  • This strategy rescues diabetes-impaired ischemia-driven angiogenesis and wound healing.
  • Targeting miRNA-181c-5p represents a promising therapeutic approach for diabetic vascular complications.