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.

Cancer Research
|November 6, 2016
PubMed

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.

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