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Updated: Jan 19, 2026

Monitoring Functionality and Morphology of Vasculature Recruited by Factors Secreted by Fast-growing Tumor-generating Cells
Published on: November 23, 2014
Trends and Challenges in Tumor Anti-Angiogenic Therapies
József Jászai1, Mirko H H Schmidt2,3,4
1Institute of Anatomy, Medical Faculty Carl Gustav Carus, Technische Universität Dresden School of Medicine, 01307 Dresden, Germany. jozsef.jaszai@tu-dresden.de.
Abstract:
Excessive abnormal angiogenesis plays a pivotal role in tumor progression and is a hallmark of solid tumors. This process is driven by an imbalance between pro- and anti-angiogenic factors dominated by the tissue hypoxia-triggered overproduction of vascular endothelial growth factor (VEGF). VEGF-mediated signaling has quickly become one of the most promising anti-angiogenic therapeutic targets in oncology. Nevertheless, the clinical efficacy of this approach is severely limited in certain tumor types or shows only transient efficacy in patients. Acquired or intrinsic therapy resistance associated with anti-VEGF monotherapeutic approaches indicates the necessity of a paradigm change when targeting neoangiogenesis in solid tumors. In this context, the elaboration of the conceptual framework of "vessel normalization" might be a promising approach to increase the efficacy of anti-angiogenic therapies and the survival rates of patients. Indeed, the promotion of vessel maturation instead of regressing tumors by vaso-obliteration could result in reduced tumor hypoxia and improved drug delivery. The implementation of such anti-angiogenic strategies, however, faces several pitfalls due to the potential involvement of multiple pro-angiogenic factors and modulatory effects of the innate and adaptive immune system. Thus, effective treatments bypassing relapses associated with anti-VEGF monotherapies or breaking the intrinsic therapy resistance of solid tumors might use combination therapies or agents with a multimodal mode of action. This review enumerates some of the current approaches and possible future directions of treating solid tumors by targeting neovascularization.
Insights
Targeting tumor blood vessel growth (angiogenesis) with vascular endothelial growth factor (VEGF) inhibitors shows limitations. Vessel normalization strategies offer a promising alternative to improve anti-angiogenic therapy efficacy in solid tumors.
Area of Science:
- Oncology
- Cancer Biology
- Translational Medicine
Background:
- Abnormal angiogenesis, driven by vascular endothelial growth factor (VEGF), is crucial for solid tumor progression.
- Current anti-VEGF therapies often face limited efficacy and resistance, necessitating new strategies.
Purpose of the Study:
- To review current and future directions for targeting tumor neovascularization.
- To explore the concept of "vessel normalization" as an alternative to direct anti-angiogenesis.
Main Methods:
- Literature review of anti-angiogenic strategies in solid tumors.
- Analysis of the role of VEGF and hypoxia in tumor angiogenesis.
- Discussion of vessel normalization, combination therapies, and multimodal agents.
Main Results:
- Anti-VEGF monotherapy exhibits limitations in clinical efficacy and acquired resistance.
- "Vessel normalization" aims to improve vessel function, reduce hypoxia, and enhance drug delivery.
- Combination therapies and multimodal agents may overcome resistance and improve outcomes.
Conclusions:
- Targeting neovascularization remains critical for solid tumor treatment.
- Vessel normalization presents a promising paradigm shift beyond simple anti-angiogenesis.
- Future research should focus on combination strategies and multimodal agents to enhance therapeutic efficacy and patient survival.
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