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Updated: Nov 9, 2025

Preclinical Model of Hind Limb Ischemia in Diabetic Rabbits
Published on: June 2, 2019
Therapeutic Biomaterial Approaches to Alleviate Chronic Limb Threatening Ischemia
Grazia Marsico1, Sergio Martin-Saldaña1, Abhay Pandit1
1CÚRAM SFI Research Centre for Medical Devices National University of Ireland Galway Ireland.
Insights
Engineered biomaterials offer a promising solution for chronic limb threatening ischemia (CLTI) by supporting pro-angiogenic therapies. These materials enhance the delivery and survival of cells and nucleic acids to promote revascularization in ischemic tissues.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Vascular Biology
Background:
- Chronic limb threatening ischemia (CLTI) involves severe lower extremity artery blockages, leading to non-healing ulcers and necrosis.
- Current surgical treatments are unsuitable for
- Purpose_of_the_Study
- Main_Methods
- Main_Results
- Conclusions
Purpose of the Study:
- To review the use of engineered biomaterials for stimulating angiogenesis in CLTI.
- To discuss the potential of biomaterials in enhancing cell and nucleic acid-based therapies for CLTI.
Main Methods:
- Review of preclinical studies on biomaterials for CLTI treatment.
- Analysis of biomaterials incorporating nucleic acids, proteins, and cells.
Main Results:
- Engineered biomaterials show promise in supporting pro-angiogenic factors for CLTI.
- Biomaterials can improve the efficacy of cell and nucleic acid-based therapies by enhancing survival.
Conclusions:
- Biomaterials represent a significant advancement in regenerative strategies for CLTI.
- Further research into biomaterial applications could lead to improved treatments for ischemic limbs.
Abstract:
Chronic limb threatening ischemia (CLTI) is a severe condition defined by the blockage of arteries in the lower extremities that leads to the degeneration of blood vessels and is characterized by the formation of non-healing ulcers and necrosis. The gold standard therapies such as bypass and endovascular surgery aim at the removal of the blockage. These therapies are not suitable for the so-called "no option patients" which present multiple artery occlusions with a likelihood of significant limb amputation. Therefore, CLTI represents a significant clinical challenge, and the efforts of developing new treatments have been focused on stimulating angiogenesis in the ischemic muscle. The delivery of pro-angiogenic nucleic acid, protein, and stem cell-based interventions have limited efficacy due to their short survival. Engineered biomaterials have emerged as a promising method to improve the effectiveness of these latter strategies. Several synthetic and natural biomaterials are tested in different formulations aiming to incorporate nucleic acid, proteins, stem cells, macrophages, or endothelial cells in supportive matrices. In this review, an overview of the biomaterials used alone and in combination with growth factors, nucleic acid, and cells in preclinical models is provided and their potential to induce revascularization and regeneration for CLTI applications is discussed.
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