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Updated: May 16, 2026

Intravital Microscopy of Tumor-associated Vasculature Using Advanced Dorsal Skinfold Window Chambers on Transgenic Fluorescent Mice
Published on: January 19, 2018
Spatial morphological and molecular differences within solid tumors may contribute to the failure of vascular
Linh Nguyen1, Theodora Fifis, Caterina Malcontenti-Wilson
1Department of Surgery, University of Melbourne, Austin Health, Heidelberg, Victoria 3084, Australia.
Background:
Treatment of solid tumors with vascular disrupting agent OXi4503 results in over 90% tumor destruction. However, a thin rim of viable cells persists in the tumor periphery following treatment, contributing to subsequent recurrence. This study investigates inherent differences in the microenvironment of the tumor periphery that contribute to treatment resistance.
Methods:
Using a murine colorectal liver metastases model, spatial morphological and molecular differences within the periphery and the center of the tumor that may account for differences in resistance to OXi4503 treatment were investigated. H&E staining and immunostaining were used to examine vessel maturity and stability, hypoxia and HIF1α levels, accumulation of immune cells, expression of proangiogenic factors/receptors (VEGF, TGF-β, b-FGF, and AT1R) and expression of EMT markers (ZEB1, vimentin, E-cadherin and β-catenin) in the periphery and center of established tumors. The effects of OXi4503 on tumor vessels and cell kinetics were also investigated.
Results:
Significant differences were found between tumor periphery and central regions, including association of the periphery with mature vessels, higher accumulation of immune cells, increased growth factor expression, minimal levels of hypoxia and increased evidence of EMT. OXi4503 treatment resulted in collapse of vessels in the tumor center; however vasculature in the periphery remained patent. Similarly, tumor apoptosis and proliferation were differentially modulated between centre and periphery after treatment.
Conclusions:
The molecular and morphological differences between tumor periphery and center may account for the observed differential resistance to OXi4503 treatment and could provide targets for drug development to totally eliminate metastases.
Insights
Treatment resistance in solid tumors is linked to the tumor periphery. Differences in the tumor microenvironment, including mature vessels and epithelial-mesenchymal transition markers, contribute to OXi4503 treatment failure and tumor recurrence.
Area of Science:
- Oncology
- Cancer Biology
- Tumor Microenvironment
Background:
- Vascular disrupting agents like OXi4503 achieve high tumor destruction but leave viable cells in the periphery.
- Tumor recurrence is often linked to this persistent peripheral cell population.
- Understanding peripheral tumor microenvironment differences is key to overcoming treatment resistance.
Purpose of the Study:
- To investigate spatial differences in the tumor periphery versus the center.
- To identify microenvironmental factors contributing to resistance against OXi4503 treatment.
- To explore potential therapeutic targets for complete tumor elimination.
Main Methods:
- Utilized a murine colorectal liver metastases model.
- Performed H&E staining and immunostaining to analyze vessel maturity, hypoxia, immune cell accumulation, growth factor expression, and EMT markers.
- Assessed the impact of OXi4503 on tumor vasculature and cell kinetics.
Main Results:
- The tumor periphery exhibited mature vasculature, increased immune cells, higher growth factor expression, and evidence of epithelial-mesenchymal transition (EMT).
- The tumor center showed collapsed vasculature post-treatment.
- Peripheral vasculature remained patent, and OXi4503 differentially affected apoptosis and proliferation in the center versus periphery.
Conclusions:
- Distinct molecular and morphological characteristics of the tumor periphery contribute to differential resistance to OXi4503.
- These differences present potential targets for novel drug development to enhance treatment efficacy and prevent recurrence.
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