Related Experiment Video
Updated: Mar 12, 2026

Author Spotlight: Creating Human Vascularized Micro-Tumors as Models for Translational Cancer Research
Published on: September 15, 2023
Quantitative Fluorescence Microscopy Measures Vascular Pore Size in Primary and Metastatic Brain Tumors
Rajendar K Mittapalli1, Chris E Adkins2, Kaci A Bohn1,3
1Department of Pharmaceutical Sciences, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, Texas.
Abstract:
Tumors residing in the central nervous system (CNS) compromise the blood-brain barrier (BBB) via increased vascular permeability, with the magnitude of changes dependent on the tumor type and location. Current studies determine penetrability of a cancer therapeutic by administering progressively larger molecules until cutoff is observed where little to no tumor accumulation occurs. However, decades-old experimental work and mathematical modeling document methods to calculate both the size of the vascular opening (pore) with solute permeability values. In this study, we updated this classic mathematical modeling approach with quantitative fluorescence microscopy in two preclinical tumor models, allowing simultaneous administration of multiple sized tracers to determine vascular permeability at a resolution of nearly one micron. We observed that three molecules ranging from 100 Da to 70 kDa permeated into a preclinical glioblastoma model at rates proportional to their diffusion in water. This suggests the solutes freely diffused from blood to glioma across vascular pores without steric restriction, which calculates to a pore size of >140 nm in diameter. In contrast, the calculated pore size of a brain metastasis of breast cancer was approximately 10-fold smaller than glioma vasculature. This difference explains why antibodies are effective against glioblastoma but generally fail in brain metastases of breast cancer. On the basis of our observations, we hypothesize that trastuzumab most likely fails in the treatment of brain metastases of breast cancer because of poor CNS penetration, while the similar sized antibody bevacizumab is effective in the same tumor type not because it penetrates the CNS degree better, but because it scavenges VEGF in the vascular compartment, which reduces edema and permeation. Cancer Res; 77(2); 238-46. ©2016 AACR.
Insights
Central nervous system (CNS) tumors increase blood-brain barrier (BBB) permeability. We quantified BBB pore size in preclinical models, finding glioblastoma has larger pores (>140 nm) than brain metastases, explaining differential antibody efficacy.
Area of Science:
- Neuro-oncology
- Vascular Biology
- Pharmacokinetics
Background:
- Central nervous system (CNS) tumors disrupt the blood-brain barrier (BBB), increasing vascular permeability.
- Current methods for assessing therapeutic penetration rely on molecular size cutoffs, not direct pore size measurement.
- Classic mathematical models exist but require updated experimental validation.
Purpose of the Study:
- To update and apply classic mathematical modeling with quantitative fluorescence microscopy to determine CNS tumor vascular pore size.
- To compare vascular pore size differences between a preclinical glioblastoma model and a brain metastasis model.
- To elucidate the mechanistic basis for differential antibody efficacy in CNS tumors.
Main Methods:
- Utilized quantitative fluorescence microscopy and simultaneous administration of multiple sized tracers (100 Da to 70 kDa).
- Applied updated classic mathematical modeling to determine vascular pore size based on tracer permeability.
- Investigated two preclinical tumor models: glioblastoma and brain metastasis of breast cancer.
Main Results:
- Glioblastoma vasculature exhibited large pores (>140 nm), allowing free diffusion of tracers up to 70 kDa.
- Brain metastasis vasculature showed significantly smaller pores, approximately 10-fold smaller than glioma.
- Observed differential tracer diffusion rates correlating with pore size, explaining varied antibody effectiveness.
Conclusions:
- Vascular pore size varies significantly between CNS tumor types, impacting therapeutic penetration.
- Glioblastoma's larger BBB pores facilitate antibody penetration, unlike smaller-pored brain metastases.
- Hypothesize trastuzumab failure in brain metastases is due to poor CNS penetration, while bevacizumab's efficacy stems from VEGF scavenging.

