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Published on: March 10, 2020
Blood vessel maturation and response to vascular-disrupting therapy in single vascular endothelial growth factor-A
Gillian M Tozer1, Simon Akerman, Neil A Cross
1Cancer Research UK Tumour Microcirculation Group, Academic Unit of Surgical Oncology, School of Medicine and Biomedical Sciences, University of Sheffield, Sheffield, United Kingdom. g.tozer@sheffield.ac.uk
Abstract:
Tubulin-binding vascular-disrupting agents (VDA) are currently in clinical trials for cancer therapy but the factors that influence tumor susceptibility to these agents are poorly understood. We evaluated the consequences of modifying tumor vascular morphology and function on vascular and therapeutic response to combretastatin-A4 3-O-phosphate (CA-4-P), which was chosen as a model VDA. Mouse fibrosarcoma cell lines that are capable of expressing all vascular endothelial growth factor (VEGF) isoforms (control) or only single isoforms of VEGF (VEGF120, VEGF164, or VEGF188) were developed under endogenous VEGF promoter control. Once tumors were established, VEGF isoform expression did not affect growth or blood flow rate. However, VEGF188 was uniquely associated with tumor vascular maturity, resistance to hemorrhage, and resistance to CA-4-P. Pericyte staining was much greater in VEGF188 and control tumors than in VEGF120 and VEGF164 tumors. Vascular volume was highest in VEGF120 and control tumors (CD31 staining) but total vascular length was highest in VEGF188 tumors, reflecting very narrow vessels forming complex vascular networks. I.v. administered 40 kDa FITC-dextran leaked slowly from the vasculature of VEGF188 tumors compared with VEGF120 tumors. Intravital microscopy measurements of vascular length and RBC velocity showed that CA-4-P produced significantly more vascular damage in VEGF120 and VEGF164 tumors than in VEGF188 and control tumors. Importantly, this translated into a similar differential in therapeutic response, as determined by tumor growth delay. Results imply differences in signaling pathways between VEGF isoforms and suggest that VEGF isoforms might be useful in vascular-disrupting cancer therapy to predict tumor susceptibility to VDAs.
Insights
Vascular endothelial growth factor (VEGF) isoforms influence tumor response to vascular-disrupting agents (VDAs). VEGF188 expression confers resistance to VDAs like combretastatin-A4 3-O-phosphate (CA-4-P), impacting cancer therapy strategies.
Area of Science:
- Oncology
- Vascular Biology
- Cancer Therapeutics
Background:
- Tubulin-binding vascular-disrupting agents (VDAs) show promise in cancer therapy, but factors influencing tumor susceptibility remain unclear.
- Understanding the role of vascular endothelial growth factor (VEGF) isoforms in tumor vascularization and response to VDAs is crucial for optimizing treatment.
Purpose of the Study:
- To investigate how different vascular endothelial growth factor (VEGF) isoforms affect tumor vascular morphology, function, and response to the VDA combretastatin-A4 3-O-phosphate (CA-4-P).
- To determine if specific VEGF isoforms can predict tumor susceptibility to VDAs in cancer therapy.
Main Methods:
- Developed mouse fibrosarcoma cell lines expressing specific VEGF isoforms (VEGF120, VEGF164, VEGF188) or all isoforms (control).
- Assessed tumor vascular morphology (CD31, pericyte staining), vascular function (FITC-dextran leakage, RBC velocity), and response to CA-4-P treatment.
- Measured tumor growth delay as an indicator of therapeutic response.
Main Results:
- VEGF188 expression was associated with mature tumor vasculature, reduced hemorrhage, and resistance to CA-4-P.
- VEGF120 and control tumors showed higher vascular volume and greater CA-4-P-induced vascular damage compared to VEGF188 tumors.
- Therapeutic response, measured by tumor growth delay, correlated with vascular damage, with VEGF120 and VEGF164 tumors responding better to CA-4-P.
Conclusions:
- Different VEGF isoforms significantly impact tumor vascular characteristics and susceptibility to VDAs.
- VEGF188 expression promotes vascular maturity and resistance to VDAs, while VEGF120 and VEGF164 are associated with greater sensitivity.
- VEGF isoform profiling may serve as a predictive biomarker for guiding VDA-based cancer therapy.
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