VEGF-ablation therapy reduces drug delivery and therapeutic response in ECM-dense tumors
F Röhrig1,2,3, S Vorlová2, H Hoffmann1,2,3
1Institute of Anatomy and Cell Biology, Universität Würzburg, Würzburg, Germany.
Abstract:
The inadequate transport of drugs into the tumor tissue caused by its abnormal vasculature is a major obstacle to the treatment of cancer. Anti-vascular endothelial growth factor (anti-VEGF) drugs can cause phenotypic alteration and maturation of the tumor's vasculature. However, whether this consistently improves delivery and subsequent response to therapy is still controversial. Clinical results indicate that not all patients benefit from antiangiogenic treatment, necessitating the development of criteria to predict the effect of these agents in individual tumors. We demonstrate that, in anti-VEGF-refractory murine tumors, vascular changes after VEGF ablation result in reduced delivery leading to therapeutic failure. In these tumors, the impaired response after anti-VEGF treatment is directly linked to strong deposition of fibrillar extracellular matrix (ECM) components and high expression of lysyl oxidases. The resulting condensed, highly crosslinked ECM impeded drug permeation, protecting tumor cells from exposure to small-molecule drugs. The reduced vascular density after anti-VEGF treatment further decreased delivery in these tumors, an effect not compensated by the improved vessel quality. Pharmacological inhibition of lysyl oxidases improved drug delivery in various tumor models and reversed the negative effect of VEGF ablation on drug delivery and therapeutic response in anti-VEGF-resistant tumors. In conclusion, the vascular changes after anti-VEGF therapy can have a context-dependent negative impact on overall therapeutic efficacy. A determining factor is the tumor ECM, which strongly influences the effect of anti-VEGF therapy. Our results reveal the prospect to revert a possible negative effect and to potentiate responsiveness to antiangiogenic therapy by concomitantly targeting ECM-modifying enzymes.
Insights
Anti-vascular endothelial growth factor (anti-VEGF) therapy can fail due to tumor extracellular matrix (ECM) changes that impede drug delivery. Targeting lysyl oxidases alongside anti-VEGF therapy may improve cancer treatment response.
Area of Science:
- Oncology
- Cancer Biology
- Drug Delivery
Background:
- Tumor drug delivery is hindered by abnormal tumor vasculature.
- Anti-VEGF therapies aim to normalize tumor vasculature but their efficacy in improving drug delivery and therapeutic response is controversial.
- Predictive criteria for anti-VEGF treatment are needed as not all patients benefit.
Purpose of the Study:
- To investigate the impact of anti-VEGF therapy on drug delivery in refractory tumors.
- To identify mechanisms underlying therapeutic failure in anti-VEGF-resistant tumors.
- To explore strategies for overcoming resistance to anti-VEGF therapy.
Main Methods:
- Utilized anti-VEGF-refractory murine tumor models.
- Assessed vascular changes, drug delivery, and therapeutic response after VEGF ablation.
- Analyzed extracellular matrix (ECM) deposition and lysyl oxidase expression.
- Investigated the effect of pharmacological lysyl oxidase inhibition on drug delivery and therapeutic outcomes.
Main Results:
- VEGF ablation in refractory tumors led to reduced drug delivery and therapeutic failure.
- Impaired response was associated with increased fibrillar ECM deposition and high lysyl oxidase expression, hindering drug permeation.
- Reduced vascular density post-anti-VEGF treatment further compromised drug delivery.
- Lysyl oxidase inhibition improved drug delivery and reversed the negative effects of VEGF ablation in resistant tumors.
Conclusions:
- Tumor vascular changes induced by anti-VEGF therapy can negatively impact therapeutic efficacy in a context-dependent manner.
- Tumor ECM composition is a critical determinant of anti-VEGF therapy response.
- Concomitant targeting of ECM-modifying enzymes, like lysyl oxidases, holds promise for enhancing anti-VEGF therapy responsiveness.
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