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Updated: Apr 2, 2026

Preclinical Model of Hind Limb Ischemia in Diabetic Rabbits
Published on: June 2, 2019
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.
Abstract:
Diabetes-related vascular complications are characterized by impaired ischemia-driven angiogenesis and delayed wound healing. MicroRNAs (miRNAs) are emerging as powerful targets for multifaceted diseases. We previously identified that miRNA-181c-5p has anti-angiogenic properties, but its role in diabetes is unknown. In a hindlimb ischemia model, streptozotocin-rendered diabetic mice treated with an miRNA-181c-5p inhibitor (anti-miR-181c-5p) exhibited improved blood flow reperfusion and increased arteriolar density compared with diabetic anti-miR-negative (anti-miR-Neg) control mice. Diabetic anti-miR-Neg mice had reduced perfusion relative to nondiabetic control mice. In a murine wound-healing model, inhibition of miRNA-181c-5p rescued diabetes-impaired wound closure rate and increased capillary density, whereas diabetic anti-miR-Neg wounds healed more slowly than nondiabetic anti-miR-Neg wounds. In vitro, inhibition of miRNA-181c-5p increased endothelial tubule formation and cell migration under high-glucose conditions. Mechanistically, anti-miR-181c-5p elevated VEGFA and VEGFR2 protein expression, ERK2 phosphorylation, and Bcl2 mRNA levels. Whole-transcriptome sequencing identified two genes (Elmo3 and Trib1) that were upregulated in anti-miR-181c-5p-treated hindlimbs and wounds. Luciferase assays confirmed VEGFA as a likely direct target of miR-181c-5p, whereas ERK2, ELMO3, and TRIB1 are indirectly regulated. These findings demonstrate that miRNA-181c-5p inhibition promotes angiogenesis and improves vascular repair in diabetes, identifying miRNA-181c-5p as a potential therapeutic target for preventing diabetic vascular complications.
Article Highlights:
We found that patients with diabetic vascular complications have elevated circulating levels of miR-181c-5p, an antiangiogenic microRNA. We tested whether inhibition of miR-181c-5p increases angiogenesis in diabetic hindlimb ischemia and wound-healing models and elucidated its mechanisms of action. miR-181c-5p inhibition rescues diabetes-impaired ischemia-driven angiogenesis and wound healing and increases endothelial angiogenic capacity. This was concomitant with increases in VEGFA, VEGFR2, ERK2 phosphorylation, Bcl2, Elmo3, and Trib1. VEGFA is a likely direct target of miR-181c-5p, whereas ERK2, ELMO3, and TRIB1, although upregulated after miR-181c-5p inhibition, are indirectly regulated downstream. miR-181c-5p inhibition represents a promising therapeutic strategy for diabetic vascular complications.
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.
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