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Updated: Aug 1, 2025

Assessing Therapeutic Angiogenesis in a Murine Model of Hindlimb Ischemia
Published on: June 8, 2019
Impaired angiogenesis in diabetic critical limb ischemia is mediated by a miR-130b/INHBA signaling axis
Henry S Cheng1, Daniel Pérez-Cremades1,2, Rulin Zhuang1,3
1Department of Medicine, Cardiovascular Division, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts, USA.
Abstract:
Patients with peripheral artery disease (PAD) and diabetes compose a high-risk population for development of critical limb ischemia (CLI) and amputation, although the underlying mechanisms remain poorly understood. Comparison of dysregulated microRNAs from diabetic patients with PAD and diabetic mice with limb ischemia revealed the conserved microRNA, miR-130b-3p. In vitro angiogenic assays demonstrated that miR-130b rapidly promoted proliferation, migration, and sprouting in endothelial cells (ECs), whereas miR-130b inhibition exerted antiangiogenic effects. Local delivery of miR-130b mimics into ischemic muscles of diabetic mice (db/db) following femoral artery ligation (FAL) promoted revascularization by increasing angiogenesis and markedly improved limb necrosis and amputation. RNA-Seq and gene set enrichment analysis from miR-130b-overexpressing ECs revealed the BMP/TGF-β signaling pathway as one of the top dysregulated pathways. Accordingly, overlapping downregulated transcripts from RNA-Seq and miRNA prediction algorithms identified that miR-130b directly targeted and repressed the TGF-β superfamily member inhibin-β-A (INHBA). miR-130b overexpression or siRNA-mediated knockdown of INHBA induced IL-8 expression, a potent angiogenic chemokine. Lastly, ectopic delivery of silencer RNAs (siRNA) targeting Inhba in db/db ischemic muscles following FAL improved revascularization and limb necrosis, recapitulating the phenotype of miR-130b delivery. Taken together, a miR-130b/INHBA signaling axis may provide therapeutic targets for patients with PAD and diabetes at risk of developing CLI.
Insights
A newly discovered microRNA, miR-130b-3p, promotes blood vessel growth in diabetic patients with peripheral artery disease (PAD). This finding offers potential new therapies to prevent critical limb ischemia (CLI) and amputation.
Area of Science:
- Vascular Biology
- Molecular Medicine
- Diabetology
Background:
- Peripheral artery disease (PAD) and diabetes create a high-risk group for critical limb ischemia (CLI) and amputation.
- The molecular mechanisms driving these conditions are not fully understood.
Purpose of the Study:
- To identify key molecular players involved in the progression of CLI in diabetic PAD patients.
- To investigate the therapeutic potential of targeting identified molecular pathways for limb salvage.
Main Methods:
- Comparative analysis of microRNAs in diabetic PAD patients and a mouse model of limb ischemia.
- In vitro endothelial cell assays to assess angiogenic potential of miR-130b-3p.
- In vivo studies using miR-130b-3p mimics and INHBA-targeting siRNAs in diabetic mice with induced limb ischemia.
- RNA-sequencing and bioinformatic analysis to identify molecular targets and pathways.
Main Results:
- miR-130b-3p was identified as a conserved microRNA promoting endothelial cell proliferation, migration, and angiogenesis.
- Delivery of miR-130b-3p mimics improved revascularization and reduced limb necrosis in diabetic mice.
- miR-130b-3p directly targets and represses inhibin-β-A (INHBA), a TGF-β superfamily member.
- Knockdown of INHBA mimicked the pro-angiogenic effects of miR-130b-3p, inducing IL-8 expression.
- Targeting Inhba with siRNA improved limb outcomes in the mouse model.
Conclusions:
- A miR-130b-3p/INHBA signaling axis plays a critical role in regulating angiogenesis in the context of diabetic limb ischemia.
- This axis represents a promising therapeutic target for preventing CLI and amputation in high-risk patients.
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