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Updated: Jan 30, 2026

A Simple Bioassay for the Evaluation of Vascular Endothelial Growth Factors
Published on: March 15, 2016
Vascular endothelial growth factor biology for regenerative angiogenesis
Andrea Uccelli1, Thomas Wolff2, Paolo Valente1
1Cell and Gene Therapy, Department of Biomedicine, University of Basel, Switzerland / Vascular Surgery, Department of Surgery, Basel University Hospital, Switzerland.
Insights
Therapeutic angiogenesis using vascular endothelial growth factor-A (VEGF) shows promise for cardiovascular diseases. However, current VEGF delivery methods face limitations in safety and efficacy, necessitating improved strategies for stable blood vessel growth.
Area of Science:
- Cardiovascular Research
- Vascular Biology
- Regenerative Medicine
Background:
- Cardiovascular diseases like peripheral artery disease and coronary artery disease remain leading causes of mortality.
- Many patients are ineligible for current treatments due to disease severity or surgical risks, highlighting the need for novel therapies.
- Therapeutic angiogenesis offers a potential alternative by stimulating new blood vessel formation in ischemic tissues.
Purpose of the Study:
- To review the current understanding of vascular endothelial growth factor-A (VEGF) in angiogenesis.
- To identify limitations in current VEGF-based therapeutic angiogenesis strategies.
- To guide the design of more effective and safer angiogenesis approaches.
Main Methods:
- Review of existing literature on VEGF function in normal and pathological angiogenesis.
- Analysis of first-generation clinical trial data for VEGF gene therapy.
- Examination of the biological properties of VEGF influencing therapeutic outcomes.
Main Results:
- VEGF is a key regulator of vascular growth but presents a narrow therapeutic window in vivo.
- Low VEGF doses are often inefficient, while high doses pose safety risks.
- Sustained VEGF expression for at least four weeks is required for stable, persistent vasculature.
Conclusions:
- Current VEGF delivery methods have limitations for safe and effective therapeutic angiogenesis.
- Understanding VEGF's biological properties is crucial for overcoming these limitations.
- Improved strategies are needed to achieve controlled, efficient, and safe blood vessel growth for treating ischemic cardiovascular diseases.
Abstract:
Despite major advances in medical, catheter-based or surgical treatment, cardiovascular diseases such as peripheral artery disease and coronary artery disease still cause significant morbidity and mortality. Furthermore, many patients do not qualify for catheter-based treatment or bypass surgery because of advanced disease or surgical risk. There is therefore an urgent need for novel treatment strategies. Therapeutic angiogenesis aims to restore blood flow to ischaemic tissue by stimulating the growth of new blood vessels through the local delivery of angiogenic factors, and may thus be an attractive treatment alternative for these patients. Angiogenesis is a complex process and the growth of normal, stable and functional vasculature depends on the coordinated interplay of different cell types and growth factors. Vascular endothelial growth factor-A (VEGF) is the fundamental regulator of vascular growth and the key target of therapeutic angiogenesis approaches. However, first-generation clinical trials of VEGF gene therapy have been disappointing, and a clear clinical benefit has yet to be established. In particular, VEGF delivery (a) appears to have a very limited therapeutic window in vivo: low doses are safe but mostly inefficient, whereas higher doses become rapidly unsafe; and (b) requires a sustained expression in vivo of at least about four weeks to achieve stable vessels that persist after cessation of the angiogenic stimulus. Here we will review the current understanding of how VEGF induces the growth of normal or pathological blood vessels, what limitations for the controlled induction of safe and efficient angiogenesis are intrinsically linked to the biological properties of VEGF, and how this knowledge can guide the design of more effective strategies for therapeutic angiogenesis.
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